10b61f8a4SDave Chinner // SPDX-License-Identifier: GPL-2.0 21da177e4SLinus Torvalds /* 33e57ecf6SOlaf Weber * Copyright (c) 2000-2006 Silicon Graphics, Inc. 47b718769SNathan Scott * All Rights Reserved. 51da177e4SLinus Torvalds */ 6f0e28280SJeff Layton #include <linux/iversion.h> 740ebd81dSRobert P. J. Day 81da177e4SLinus Torvalds #include "xfs.h" 9a844f451SNathan Scott #include "xfs_fs.h" 1070a9883cSDave Chinner #include "xfs_shared.h" 11239880efSDave Chinner #include "xfs_format.h" 12239880efSDave Chinner #include "xfs_log_format.h" 13239880efSDave Chinner #include "xfs_trans_resv.h" 141da177e4SLinus Torvalds #include "xfs_sb.h" 151da177e4SLinus Torvalds #include "xfs_mount.h" 163ab78df2SDarrick J. Wong #include "xfs_defer.h" 17a4fbe6abSDave Chinner #include "xfs_inode.h" 18c24b5dfaSDave Chinner #include "xfs_dir2.h" 19c24b5dfaSDave Chinner #include "xfs_attr.h" 20239880efSDave Chinner #include "xfs_trans_space.h" 21239880efSDave Chinner #include "xfs_trans.h" 221da177e4SLinus Torvalds #include "xfs_buf_item.h" 23a844f451SNathan Scott #include "xfs_inode_item.h" 24a844f451SNathan Scott #include "xfs_ialloc.h" 25a844f451SNathan Scott #include "xfs_bmap.h" 2668988114SDave Chinner #include "xfs_bmap_util.h" 27e9e899a2SDarrick J. Wong #include "xfs_errortag.h" 281da177e4SLinus Torvalds #include "xfs_error.h" 291da177e4SLinus Torvalds #include "xfs_quota.h" 302a82b8beSDavid Chinner #include "xfs_filestream.h" 310b1b213fSChristoph Hellwig #include "xfs_trace.h" 3233479e05SDave Chinner #include "xfs_icache.h" 33c24b5dfaSDave Chinner #include "xfs_symlink.h" 34239880efSDave Chinner #include "xfs_trans_priv.h" 35239880efSDave Chinner #include "xfs_log.h" 36a4fbe6abSDave Chinner #include "xfs_bmap_btree.h" 37aa8968f2SDarrick J. Wong #include "xfs_reflink.h" 381da177e4SLinus Torvalds 391da177e4SLinus Torvalds kmem_zone_t *xfs_inode_zone; 401da177e4SLinus Torvalds 411da177e4SLinus Torvalds /* 428f04c47aSChristoph Hellwig * Used in xfs_itruncate_extents(). This is the maximum number of extents 431da177e4SLinus Torvalds * freed from a file in a single transaction. 441da177e4SLinus Torvalds */ 451da177e4SLinus Torvalds #define XFS_ITRUNC_MAX_EXTENTS 2 461da177e4SLinus Torvalds 4754d7b5c1SDave Chinner STATIC int xfs_iunlink(struct xfs_trans *, struct xfs_inode *); 4854d7b5c1SDave Chinner STATIC int xfs_iunlink_remove(struct xfs_trans *, struct xfs_inode *); 49ab297431SZhi Yong Wu 502a0ec1d9SDave Chinner /* 512a0ec1d9SDave Chinner * helper function to extract extent size hint from inode 522a0ec1d9SDave Chinner */ 532a0ec1d9SDave Chinner xfs_extlen_t 542a0ec1d9SDave Chinner xfs_get_extsz_hint( 552a0ec1d9SDave Chinner struct xfs_inode *ip) 562a0ec1d9SDave Chinner { 57bdb2ed2dSChristoph Hellwig /* 58bdb2ed2dSChristoph Hellwig * No point in aligning allocations if we need to COW to actually 59bdb2ed2dSChristoph Hellwig * write to them. 60bdb2ed2dSChristoph Hellwig */ 61bdb2ed2dSChristoph Hellwig if (xfs_is_always_cow_inode(ip)) 62bdb2ed2dSChristoph Hellwig return 0; 632a0ec1d9SDave Chinner if ((ip->i_d.di_flags & XFS_DIFLAG_EXTSIZE) && ip->i_d.di_extsize) 642a0ec1d9SDave Chinner return ip->i_d.di_extsize; 652a0ec1d9SDave Chinner if (XFS_IS_REALTIME_INODE(ip)) 662a0ec1d9SDave Chinner return ip->i_mount->m_sb.sb_rextsize; 672a0ec1d9SDave Chinner return 0; 682a0ec1d9SDave Chinner } 692a0ec1d9SDave Chinner 70fa96acadSDave Chinner /* 71f7ca3522SDarrick J. Wong * Helper function to extract CoW extent size hint from inode. 72f7ca3522SDarrick J. Wong * Between the extent size hint and the CoW extent size hint, we 73e153aa79SDarrick J. Wong * return the greater of the two. If the value is zero (automatic), 74e153aa79SDarrick J. Wong * use the default size. 75f7ca3522SDarrick J. Wong */ 76f7ca3522SDarrick J. Wong xfs_extlen_t 77f7ca3522SDarrick J. Wong xfs_get_cowextsz_hint( 78f7ca3522SDarrick J. Wong struct xfs_inode *ip) 79f7ca3522SDarrick J. Wong { 80f7ca3522SDarrick J. Wong xfs_extlen_t a, b; 81f7ca3522SDarrick J. Wong 82f7ca3522SDarrick J. Wong a = 0; 83f7ca3522SDarrick J. Wong if (ip->i_d.di_flags2 & XFS_DIFLAG2_COWEXTSIZE) 84f7ca3522SDarrick J. Wong a = ip->i_d.di_cowextsize; 85f7ca3522SDarrick J. Wong b = xfs_get_extsz_hint(ip); 86f7ca3522SDarrick J. Wong 87e153aa79SDarrick J. Wong a = max(a, b); 88e153aa79SDarrick J. Wong if (a == 0) 89e153aa79SDarrick J. Wong return XFS_DEFAULT_COWEXTSZ_HINT; 90f7ca3522SDarrick J. Wong return a; 91f7ca3522SDarrick J. Wong } 92f7ca3522SDarrick J. Wong 93f7ca3522SDarrick J. Wong /* 94efa70be1SChristoph Hellwig * These two are wrapper routines around the xfs_ilock() routine used to 95efa70be1SChristoph Hellwig * centralize some grungy code. They are used in places that wish to lock the 96efa70be1SChristoph Hellwig * inode solely for reading the extents. The reason these places can't just 97efa70be1SChristoph Hellwig * call xfs_ilock(ip, XFS_ILOCK_SHARED) is that the inode lock also guards to 98efa70be1SChristoph Hellwig * bringing in of the extents from disk for a file in b-tree format. If the 99efa70be1SChristoph Hellwig * inode is in b-tree format, then we need to lock the inode exclusively until 100efa70be1SChristoph Hellwig * the extents are read in. Locking it exclusively all the time would limit 101efa70be1SChristoph Hellwig * our parallelism unnecessarily, though. What we do instead is check to see 102efa70be1SChristoph Hellwig * if the extents have been read in yet, and only lock the inode exclusively 103efa70be1SChristoph Hellwig * if they have not. 104fa96acadSDave Chinner * 105efa70be1SChristoph Hellwig * The functions return a value which should be given to the corresponding 10601f4f327SChristoph Hellwig * xfs_iunlock() call. 107fa96acadSDave Chinner */ 108fa96acadSDave Chinner uint 109309ecac8SChristoph Hellwig xfs_ilock_data_map_shared( 110309ecac8SChristoph Hellwig struct xfs_inode *ip) 111fa96acadSDave Chinner { 112309ecac8SChristoph Hellwig uint lock_mode = XFS_ILOCK_SHARED; 113fa96acadSDave Chinner 114f7e67b20SChristoph Hellwig if (ip->i_df.if_format == XFS_DINODE_FMT_BTREE && 115309ecac8SChristoph Hellwig (ip->i_df.if_flags & XFS_IFEXTENTS) == 0) 116fa96acadSDave Chinner lock_mode = XFS_ILOCK_EXCL; 117fa96acadSDave Chinner xfs_ilock(ip, lock_mode); 118fa96acadSDave Chinner return lock_mode; 119fa96acadSDave Chinner } 120fa96acadSDave Chinner 121efa70be1SChristoph Hellwig uint 122efa70be1SChristoph Hellwig xfs_ilock_attr_map_shared( 123efa70be1SChristoph Hellwig struct xfs_inode *ip) 124fa96acadSDave Chinner { 125efa70be1SChristoph Hellwig uint lock_mode = XFS_ILOCK_SHARED; 126efa70be1SChristoph Hellwig 127f7e67b20SChristoph Hellwig if (ip->i_afp && 128f7e67b20SChristoph Hellwig ip->i_afp->if_format == XFS_DINODE_FMT_BTREE && 129efa70be1SChristoph Hellwig (ip->i_afp->if_flags & XFS_IFEXTENTS) == 0) 130efa70be1SChristoph Hellwig lock_mode = XFS_ILOCK_EXCL; 131efa70be1SChristoph Hellwig xfs_ilock(ip, lock_mode); 132efa70be1SChristoph Hellwig return lock_mode; 133fa96acadSDave Chinner } 134fa96acadSDave Chinner 135fa96acadSDave Chinner /* 13665523218SChristoph Hellwig * In addition to i_rwsem in the VFS inode, the xfs inode contains 2 13765523218SChristoph Hellwig * multi-reader locks: i_mmap_lock and the i_lock. This routine allows 13865523218SChristoph Hellwig * various combinations of the locks to be obtained. 139fa96acadSDave Chinner * 140653c60b6SDave Chinner * The 3 locks should always be ordered so that the IO lock is obtained first, 141653c60b6SDave Chinner * the mmap lock second and the ilock last in order to prevent deadlock. 142fa96acadSDave Chinner * 143653c60b6SDave Chinner * Basic locking order: 144653c60b6SDave Chinner * 14565523218SChristoph Hellwig * i_rwsem -> i_mmap_lock -> page_lock -> i_ilock 146653c60b6SDave Chinner * 147c1e8d7c6SMichel Lespinasse * mmap_lock locking order: 148653c60b6SDave Chinner * 149c1e8d7c6SMichel Lespinasse * i_rwsem -> page lock -> mmap_lock 150c1e8d7c6SMichel Lespinasse * mmap_lock -> i_mmap_lock -> page_lock 151653c60b6SDave Chinner * 152c1e8d7c6SMichel Lespinasse * The difference in mmap_lock locking order mean that we cannot hold the 153653c60b6SDave Chinner * i_mmap_lock over syscall based read(2)/write(2) based IO. These IO paths can 154c1e8d7c6SMichel Lespinasse * fault in pages during copy in/out (for buffered IO) or require the mmap_lock 155653c60b6SDave Chinner * in get_user_pages() to map the user pages into the kernel address space for 15665523218SChristoph Hellwig * direct IO. Similarly the i_rwsem cannot be taken inside a page fault because 157c1e8d7c6SMichel Lespinasse * page faults already hold the mmap_lock. 158653c60b6SDave Chinner * 159653c60b6SDave Chinner * Hence to serialise fully against both syscall and mmap based IO, we need to 16065523218SChristoph Hellwig * take both the i_rwsem and the i_mmap_lock. These locks should *only* be both 161653c60b6SDave Chinner * taken in places where we need to invalidate the page cache in a race 162653c60b6SDave Chinner * free manner (e.g. truncate, hole punch and other extent manipulation 163653c60b6SDave Chinner * functions). 164fa96acadSDave Chinner */ 165fa96acadSDave Chinner void 166fa96acadSDave Chinner xfs_ilock( 167fa96acadSDave Chinner xfs_inode_t *ip, 168fa96acadSDave Chinner uint lock_flags) 169fa96acadSDave Chinner { 170fa96acadSDave Chinner trace_xfs_ilock(ip, lock_flags, _RET_IP_); 171fa96acadSDave Chinner 172fa96acadSDave Chinner /* 173fa96acadSDave Chinner * You can't set both SHARED and EXCL for the same lock, 174fa96acadSDave Chinner * and only XFS_IOLOCK_SHARED, XFS_IOLOCK_EXCL, XFS_ILOCK_SHARED, 175fa96acadSDave Chinner * and XFS_ILOCK_EXCL are valid values to set in lock_flags. 176fa96acadSDave Chinner */ 177fa96acadSDave Chinner ASSERT((lock_flags & (XFS_IOLOCK_SHARED | XFS_IOLOCK_EXCL)) != 178fa96acadSDave Chinner (XFS_IOLOCK_SHARED | XFS_IOLOCK_EXCL)); 179653c60b6SDave Chinner ASSERT((lock_flags & (XFS_MMAPLOCK_SHARED | XFS_MMAPLOCK_EXCL)) != 180653c60b6SDave Chinner (XFS_MMAPLOCK_SHARED | XFS_MMAPLOCK_EXCL)); 181fa96acadSDave Chinner ASSERT((lock_flags & (XFS_ILOCK_SHARED | XFS_ILOCK_EXCL)) != 182fa96acadSDave Chinner (XFS_ILOCK_SHARED | XFS_ILOCK_EXCL)); 1830952c818SDave Chinner ASSERT((lock_flags & ~(XFS_LOCK_MASK | XFS_LOCK_SUBCLASS_MASK)) == 0); 184fa96acadSDave Chinner 18565523218SChristoph Hellwig if (lock_flags & XFS_IOLOCK_EXCL) { 18665523218SChristoph Hellwig down_write_nested(&VFS_I(ip)->i_rwsem, 18765523218SChristoph Hellwig XFS_IOLOCK_DEP(lock_flags)); 18865523218SChristoph Hellwig } else if (lock_flags & XFS_IOLOCK_SHARED) { 18965523218SChristoph Hellwig down_read_nested(&VFS_I(ip)->i_rwsem, 19065523218SChristoph Hellwig XFS_IOLOCK_DEP(lock_flags)); 19165523218SChristoph Hellwig } 192fa96acadSDave Chinner 193653c60b6SDave Chinner if (lock_flags & XFS_MMAPLOCK_EXCL) 194653c60b6SDave Chinner mrupdate_nested(&ip->i_mmaplock, XFS_MMAPLOCK_DEP(lock_flags)); 195653c60b6SDave Chinner else if (lock_flags & XFS_MMAPLOCK_SHARED) 196653c60b6SDave Chinner mraccess_nested(&ip->i_mmaplock, XFS_MMAPLOCK_DEP(lock_flags)); 197653c60b6SDave Chinner 198fa96acadSDave Chinner if (lock_flags & XFS_ILOCK_EXCL) 199fa96acadSDave Chinner mrupdate_nested(&ip->i_lock, XFS_ILOCK_DEP(lock_flags)); 200fa96acadSDave Chinner else if (lock_flags & XFS_ILOCK_SHARED) 201fa96acadSDave Chinner mraccess_nested(&ip->i_lock, XFS_ILOCK_DEP(lock_flags)); 202fa96acadSDave Chinner } 203fa96acadSDave Chinner 204fa96acadSDave Chinner /* 205fa96acadSDave Chinner * This is just like xfs_ilock(), except that the caller 206fa96acadSDave Chinner * is guaranteed not to sleep. It returns 1 if it gets 207fa96acadSDave Chinner * the requested locks and 0 otherwise. If the IO lock is 208fa96acadSDave Chinner * obtained but the inode lock cannot be, then the IO lock 209fa96acadSDave Chinner * is dropped before returning. 210fa96acadSDave Chinner * 211fa96acadSDave Chinner * ip -- the inode being locked 212fa96acadSDave Chinner * lock_flags -- this parameter indicates the inode's locks to be 213fa96acadSDave Chinner * to be locked. See the comment for xfs_ilock() for a list 214fa96acadSDave Chinner * of valid values. 215fa96acadSDave Chinner */ 216fa96acadSDave Chinner int 217fa96acadSDave Chinner xfs_ilock_nowait( 218fa96acadSDave Chinner xfs_inode_t *ip, 219fa96acadSDave Chinner uint lock_flags) 220fa96acadSDave Chinner { 221fa96acadSDave Chinner trace_xfs_ilock_nowait(ip, lock_flags, _RET_IP_); 222fa96acadSDave Chinner 223fa96acadSDave Chinner /* 224fa96acadSDave Chinner * You can't set both SHARED and EXCL for the same lock, 225fa96acadSDave Chinner * and only XFS_IOLOCK_SHARED, XFS_IOLOCK_EXCL, XFS_ILOCK_SHARED, 226fa96acadSDave Chinner * and XFS_ILOCK_EXCL are valid values to set in lock_flags. 227fa96acadSDave Chinner */ 228fa96acadSDave Chinner ASSERT((lock_flags & (XFS_IOLOCK_SHARED | XFS_IOLOCK_EXCL)) != 229fa96acadSDave Chinner (XFS_IOLOCK_SHARED | XFS_IOLOCK_EXCL)); 230653c60b6SDave Chinner ASSERT((lock_flags & (XFS_MMAPLOCK_SHARED | XFS_MMAPLOCK_EXCL)) != 231653c60b6SDave Chinner (XFS_MMAPLOCK_SHARED | XFS_MMAPLOCK_EXCL)); 232fa96acadSDave Chinner ASSERT((lock_flags & (XFS_ILOCK_SHARED | XFS_ILOCK_EXCL)) != 233fa96acadSDave Chinner (XFS_ILOCK_SHARED | XFS_ILOCK_EXCL)); 2340952c818SDave Chinner ASSERT((lock_flags & ~(XFS_LOCK_MASK | XFS_LOCK_SUBCLASS_MASK)) == 0); 235fa96acadSDave Chinner 236fa96acadSDave Chinner if (lock_flags & XFS_IOLOCK_EXCL) { 23765523218SChristoph Hellwig if (!down_write_trylock(&VFS_I(ip)->i_rwsem)) 238fa96acadSDave Chinner goto out; 239fa96acadSDave Chinner } else if (lock_flags & XFS_IOLOCK_SHARED) { 24065523218SChristoph Hellwig if (!down_read_trylock(&VFS_I(ip)->i_rwsem)) 241fa96acadSDave Chinner goto out; 242fa96acadSDave Chinner } 243653c60b6SDave Chinner 244653c60b6SDave Chinner if (lock_flags & XFS_MMAPLOCK_EXCL) { 245653c60b6SDave Chinner if (!mrtryupdate(&ip->i_mmaplock)) 246653c60b6SDave Chinner goto out_undo_iolock; 247653c60b6SDave Chinner } else if (lock_flags & XFS_MMAPLOCK_SHARED) { 248653c60b6SDave Chinner if (!mrtryaccess(&ip->i_mmaplock)) 249653c60b6SDave Chinner goto out_undo_iolock; 250653c60b6SDave Chinner } 251653c60b6SDave Chinner 252fa96acadSDave Chinner if (lock_flags & XFS_ILOCK_EXCL) { 253fa96acadSDave Chinner if (!mrtryupdate(&ip->i_lock)) 254653c60b6SDave Chinner goto out_undo_mmaplock; 255fa96acadSDave Chinner } else if (lock_flags & XFS_ILOCK_SHARED) { 256fa96acadSDave Chinner if (!mrtryaccess(&ip->i_lock)) 257653c60b6SDave Chinner goto out_undo_mmaplock; 258fa96acadSDave Chinner } 259fa96acadSDave Chinner return 1; 260fa96acadSDave Chinner 261653c60b6SDave Chinner out_undo_mmaplock: 262653c60b6SDave Chinner if (lock_flags & XFS_MMAPLOCK_EXCL) 263653c60b6SDave Chinner mrunlock_excl(&ip->i_mmaplock); 264653c60b6SDave Chinner else if (lock_flags & XFS_MMAPLOCK_SHARED) 265653c60b6SDave Chinner mrunlock_shared(&ip->i_mmaplock); 266fa96acadSDave Chinner out_undo_iolock: 267fa96acadSDave Chinner if (lock_flags & XFS_IOLOCK_EXCL) 26865523218SChristoph Hellwig up_write(&VFS_I(ip)->i_rwsem); 269fa96acadSDave Chinner else if (lock_flags & XFS_IOLOCK_SHARED) 27065523218SChristoph Hellwig up_read(&VFS_I(ip)->i_rwsem); 271fa96acadSDave Chinner out: 272fa96acadSDave Chinner return 0; 273fa96acadSDave Chinner } 274fa96acadSDave Chinner 275fa96acadSDave Chinner /* 276fa96acadSDave Chinner * xfs_iunlock() is used to drop the inode locks acquired with 277fa96acadSDave Chinner * xfs_ilock() and xfs_ilock_nowait(). The caller must pass 278fa96acadSDave Chinner * in the flags given to xfs_ilock() or xfs_ilock_nowait() so 279fa96acadSDave Chinner * that we know which locks to drop. 280fa96acadSDave Chinner * 281fa96acadSDave Chinner * ip -- the inode being unlocked 282fa96acadSDave Chinner * lock_flags -- this parameter indicates the inode's locks to be 283fa96acadSDave Chinner * to be unlocked. See the comment for xfs_ilock() for a list 284fa96acadSDave Chinner * of valid values for this parameter. 285fa96acadSDave Chinner * 286fa96acadSDave Chinner */ 287fa96acadSDave Chinner void 288fa96acadSDave Chinner xfs_iunlock( 289fa96acadSDave Chinner xfs_inode_t *ip, 290fa96acadSDave Chinner uint lock_flags) 291fa96acadSDave Chinner { 292fa96acadSDave Chinner /* 293fa96acadSDave Chinner * You can't set both SHARED and EXCL for the same lock, 294fa96acadSDave Chinner * and only XFS_IOLOCK_SHARED, XFS_IOLOCK_EXCL, XFS_ILOCK_SHARED, 295fa96acadSDave Chinner * and XFS_ILOCK_EXCL are valid values to set in lock_flags. 296fa96acadSDave Chinner */ 297fa96acadSDave Chinner ASSERT((lock_flags & (XFS_IOLOCK_SHARED | XFS_IOLOCK_EXCL)) != 298fa96acadSDave Chinner (XFS_IOLOCK_SHARED | XFS_IOLOCK_EXCL)); 299653c60b6SDave Chinner ASSERT((lock_flags & (XFS_MMAPLOCK_SHARED | XFS_MMAPLOCK_EXCL)) != 300653c60b6SDave Chinner (XFS_MMAPLOCK_SHARED | XFS_MMAPLOCK_EXCL)); 301fa96acadSDave Chinner ASSERT((lock_flags & (XFS_ILOCK_SHARED | XFS_ILOCK_EXCL)) != 302fa96acadSDave Chinner (XFS_ILOCK_SHARED | XFS_ILOCK_EXCL)); 3030952c818SDave Chinner ASSERT((lock_flags & ~(XFS_LOCK_MASK | XFS_LOCK_SUBCLASS_MASK)) == 0); 304fa96acadSDave Chinner ASSERT(lock_flags != 0); 305fa96acadSDave Chinner 306fa96acadSDave Chinner if (lock_flags & XFS_IOLOCK_EXCL) 30765523218SChristoph Hellwig up_write(&VFS_I(ip)->i_rwsem); 308fa96acadSDave Chinner else if (lock_flags & XFS_IOLOCK_SHARED) 30965523218SChristoph Hellwig up_read(&VFS_I(ip)->i_rwsem); 310fa96acadSDave Chinner 311653c60b6SDave Chinner if (lock_flags & XFS_MMAPLOCK_EXCL) 312653c60b6SDave Chinner mrunlock_excl(&ip->i_mmaplock); 313653c60b6SDave Chinner else if (lock_flags & XFS_MMAPLOCK_SHARED) 314653c60b6SDave Chinner mrunlock_shared(&ip->i_mmaplock); 315653c60b6SDave Chinner 316fa96acadSDave Chinner if (lock_flags & XFS_ILOCK_EXCL) 317fa96acadSDave Chinner mrunlock_excl(&ip->i_lock); 318fa96acadSDave Chinner else if (lock_flags & XFS_ILOCK_SHARED) 319fa96acadSDave Chinner mrunlock_shared(&ip->i_lock); 320fa96acadSDave Chinner 321fa96acadSDave Chinner trace_xfs_iunlock(ip, lock_flags, _RET_IP_); 322fa96acadSDave Chinner } 323fa96acadSDave Chinner 324fa96acadSDave Chinner /* 325fa96acadSDave Chinner * give up write locks. the i/o lock cannot be held nested 326fa96acadSDave Chinner * if it is being demoted. 327fa96acadSDave Chinner */ 328fa96acadSDave Chinner void 329fa96acadSDave Chinner xfs_ilock_demote( 330fa96acadSDave Chinner xfs_inode_t *ip, 331fa96acadSDave Chinner uint lock_flags) 332fa96acadSDave Chinner { 333653c60b6SDave Chinner ASSERT(lock_flags & (XFS_IOLOCK_EXCL|XFS_MMAPLOCK_EXCL|XFS_ILOCK_EXCL)); 334653c60b6SDave Chinner ASSERT((lock_flags & 335653c60b6SDave Chinner ~(XFS_IOLOCK_EXCL|XFS_MMAPLOCK_EXCL|XFS_ILOCK_EXCL)) == 0); 336fa96acadSDave Chinner 337fa96acadSDave Chinner if (lock_flags & XFS_ILOCK_EXCL) 338fa96acadSDave Chinner mrdemote(&ip->i_lock); 339653c60b6SDave Chinner if (lock_flags & XFS_MMAPLOCK_EXCL) 340653c60b6SDave Chinner mrdemote(&ip->i_mmaplock); 341fa96acadSDave Chinner if (lock_flags & XFS_IOLOCK_EXCL) 34265523218SChristoph Hellwig downgrade_write(&VFS_I(ip)->i_rwsem); 343fa96acadSDave Chinner 344fa96acadSDave Chinner trace_xfs_ilock_demote(ip, lock_flags, _RET_IP_); 345fa96acadSDave Chinner } 346fa96acadSDave Chinner 347742ae1e3SDave Chinner #if defined(DEBUG) || defined(XFS_WARN) 348fa96acadSDave Chinner int 349fa96acadSDave Chinner xfs_isilocked( 350fa96acadSDave Chinner xfs_inode_t *ip, 351fa96acadSDave Chinner uint lock_flags) 352fa96acadSDave Chinner { 353fa96acadSDave Chinner if (lock_flags & (XFS_ILOCK_EXCL|XFS_ILOCK_SHARED)) { 354fa96acadSDave Chinner if (!(lock_flags & XFS_ILOCK_SHARED)) 355fa96acadSDave Chinner return !!ip->i_lock.mr_writer; 356fa96acadSDave Chinner return rwsem_is_locked(&ip->i_lock.mr_lock); 357fa96acadSDave Chinner } 358fa96acadSDave Chinner 359653c60b6SDave Chinner if (lock_flags & (XFS_MMAPLOCK_EXCL|XFS_MMAPLOCK_SHARED)) { 360653c60b6SDave Chinner if (!(lock_flags & XFS_MMAPLOCK_SHARED)) 361653c60b6SDave Chinner return !!ip->i_mmaplock.mr_writer; 362653c60b6SDave Chinner return rwsem_is_locked(&ip->i_mmaplock.mr_lock); 363653c60b6SDave Chinner } 364653c60b6SDave Chinner 365fa96acadSDave Chinner if (lock_flags & (XFS_IOLOCK_EXCL|XFS_IOLOCK_SHARED)) { 366fa96acadSDave Chinner if (!(lock_flags & XFS_IOLOCK_SHARED)) 36765523218SChristoph Hellwig return !debug_locks || 36865523218SChristoph Hellwig lockdep_is_held_type(&VFS_I(ip)->i_rwsem, 0); 36965523218SChristoph Hellwig return rwsem_is_locked(&VFS_I(ip)->i_rwsem); 370fa96acadSDave Chinner } 371fa96acadSDave Chinner 372fa96acadSDave Chinner ASSERT(0); 373fa96acadSDave Chinner return 0; 374fa96acadSDave Chinner } 375fa96acadSDave Chinner #endif 376fa96acadSDave Chinner 377b6a9947eSDave Chinner /* 378b6a9947eSDave Chinner * xfs_lockdep_subclass_ok() is only used in an ASSERT, so is only called when 379b6a9947eSDave Chinner * DEBUG or XFS_WARN is set. And MAX_LOCKDEP_SUBCLASSES is then only defined 380b6a9947eSDave Chinner * when CONFIG_LOCKDEP is set. Hence the complex define below to avoid build 381b6a9947eSDave Chinner * errors and warnings. 382b6a9947eSDave Chinner */ 383b6a9947eSDave Chinner #if (defined(DEBUG) || defined(XFS_WARN)) && defined(CONFIG_LOCKDEP) 3843403ccc0SDave Chinner static bool 3853403ccc0SDave Chinner xfs_lockdep_subclass_ok( 3863403ccc0SDave Chinner int subclass) 3873403ccc0SDave Chinner { 3883403ccc0SDave Chinner return subclass < MAX_LOCKDEP_SUBCLASSES; 3893403ccc0SDave Chinner } 3903403ccc0SDave Chinner #else 3913403ccc0SDave Chinner #define xfs_lockdep_subclass_ok(subclass) (true) 3923403ccc0SDave Chinner #endif 3933403ccc0SDave Chinner 394c24b5dfaSDave Chinner /* 395653c60b6SDave Chinner * Bump the subclass so xfs_lock_inodes() acquires each lock with a different 3960952c818SDave Chinner * value. This can be called for any type of inode lock combination, including 3970952c818SDave Chinner * parent locking. Care must be taken to ensure we don't overrun the subclass 3980952c818SDave Chinner * storage fields in the class mask we build. 399c24b5dfaSDave Chinner */ 400c24b5dfaSDave Chinner static inline int 401c24b5dfaSDave Chinner xfs_lock_inumorder(int lock_mode, int subclass) 402c24b5dfaSDave Chinner { 4030952c818SDave Chinner int class = 0; 4040952c818SDave Chinner 4050952c818SDave Chinner ASSERT(!(lock_mode & (XFS_ILOCK_PARENT | XFS_ILOCK_RTBITMAP | 4060952c818SDave Chinner XFS_ILOCK_RTSUM))); 4073403ccc0SDave Chinner ASSERT(xfs_lockdep_subclass_ok(subclass)); 4080952c818SDave Chinner 409653c60b6SDave Chinner if (lock_mode & (XFS_IOLOCK_SHARED|XFS_IOLOCK_EXCL)) { 4100952c818SDave Chinner ASSERT(subclass <= XFS_IOLOCK_MAX_SUBCLASS); 4110952c818SDave Chinner class += subclass << XFS_IOLOCK_SHIFT; 412653c60b6SDave Chinner } 413653c60b6SDave Chinner 414653c60b6SDave Chinner if (lock_mode & (XFS_MMAPLOCK_SHARED|XFS_MMAPLOCK_EXCL)) { 4150952c818SDave Chinner ASSERT(subclass <= XFS_MMAPLOCK_MAX_SUBCLASS); 4160952c818SDave Chinner class += subclass << XFS_MMAPLOCK_SHIFT; 417653c60b6SDave Chinner } 418653c60b6SDave Chinner 4190952c818SDave Chinner if (lock_mode & (XFS_ILOCK_SHARED|XFS_ILOCK_EXCL)) { 4200952c818SDave Chinner ASSERT(subclass <= XFS_ILOCK_MAX_SUBCLASS); 4210952c818SDave Chinner class += subclass << XFS_ILOCK_SHIFT; 4220952c818SDave Chinner } 423c24b5dfaSDave Chinner 4240952c818SDave Chinner return (lock_mode & ~XFS_LOCK_SUBCLASS_MASK) | class; 425c24b5dfaSDave Chinner } 426c24b5dfaSDave Chinner 427c24b5dfaSDave Chinner /* 42895afcf5cSDave Chinner * The following routine will lock n inodes in exclusive mode. We assume the 42995afcf5cSDave Chinner * caller calls us with the inodes in i_ino order. 430c24b5dfaSDave Chinner * 43195afcf5cSDave Chinner * We need to detect deadlock where an inode that we lock is in the AIL and we 43295afcf5cSDave Chinner * start waiting for another inode that is locked by a thread in a long running 43395afcf5cSDave Chinner * transaction (such as truncate). This can result in deadlock since the long 43495afcf5cSDave Chinner * running trans might need to wait for the inode we just locked in order to 43595afcf5cSDave Chinner * push the tail and free space in the log. 4360952c818SDave Chinner * 4370952c818SDave Chinner * xfs_lock_inodes() can only be used to lock one type of lock at a time - 4380952c818SDave Chinner * the iolock, the mmaplock or the ilock, but not more than one at a time. If we 4390952c818SDave Chinner * lock more than one at a time, lockdep will report false positives saying we 4400952c818SDave Chinner * have violated locking orders. 441c24b5dfaSDave Chinner */ 4420d5a75e9SEric Sandeen static void 443c24b5dfaSDave Chinner xfs_lock_inodes( 444efe2330fSChristoph Hellwig struct xfs_inode **ips, 445c24b5dfaSDave Chinner int inodes, 446c24b5dfaSDave Chinner uint lock_mode) 447c24b5dfaSDave Chinner { 448c24b5dfaSDave Chinner int attempts = 0, i, j, try_lock; 449efe2330fSChristoph Hellwig struct xfs_log_item *lp; 450c24b5dfaSDave Chinner 4510952c818SDave Chinner /* 4520952c818SDave Chinner * Currently supports between 2 and 5 inodes with exclusive locking. We 4530952c818SDave Chinner * support an arbitrary depth of locking here, but absolute limits on 4540952c818SDave Chinner * inodes depend on the the type of locking and the limits placed by 4550952c818SDave Chinner * lockdep annotations in xfs_lock_inumorder. These are all checked by 4560952c818SDave Chinner * the asserts. 4570952c818SDave Chinner */ 45895afcf5cSDave Chinner ASSERT(ips && inodes >= 2 && inodes <= 5); 4590952c818SDave Chinner ASSERT(lock_mode & (XFS_IOLOCK_EXCL | XFS_MMAPLOCK_EXCL | 4600952c818SDave Chinner XFS_ILOCK_EXCL)); 4610952c818SDave Chinner ASSERT(!(lock_mode & (XFS_IOLOCK_SHARED | XFS_MMAPLOCK_SHARED | 4620952c818SDave Chinner XFS_ILOCK_SHARED))); 4630952c818SDave Chinner ASSERT(!(lock_mode & XFS_MMAPLOCK_EXCL) || 4640952c818SDave Chinner inodes <= XFS_MMAPLOCK_MAX_SUBCLASS + 1); 4650952c818SDave Chinner ASSERT(!(lock_mode & XFS_ILOCK_EXCL) || 4660952c818SDave Chinner inodes <= XFS_ILOCK_MAX_SUBCLASS + 1); 4670952c818SDave Chinner 4680952c818SDave Chinner if (lock_mode & XFS_IOLOCK_EXCL) { 4690952c818SDave Chinner ASSERT(!(lock_mode & (XFS_MMAPLOCK_EXCL | XFS_ILOCK_EXCL))); 4700952c818SDave Chinner } else if (lock_mode & XFS_MMAPLOCK_EXCL) 4710952c818SDave Chinner ASSERT(!(lock_mode & XFS_ILOCK_EXCL)); 472c24b5dfaSDave Chinner 473c24b5dfaSDave Chinner try_lock = 0; 474c24b5dfaSDave Chinner i = 0; 475c24b5dfaSDave Chinner again: 476c24b5dfaSDave Chinner for (; i < inodes; i++) { 477c24b5dfaSDave Chinner ASSERT(ips[i]); 478c24b5dfaSDave Chinner 479c24b5dfaSDave Chinner if (i && (ips[i] == ips[i - 1])) /* Already locked */ 480c24b5dfaSDave Chinner continue; 481c24b5dfaSDave Chinner 482c24b5dfaSDave Chinner /* 48395afcf5cSDave Chinner * If try_lock is not set yet, make sure all locked inodes are 48495afcf5cSDave Chinner * not in the AIL. If any are, set try_lock to be used later. 485c24b5dfaSDave Chinner */ 486c24b5dfaSDave Chinner if (!try_lock) { 487c24b5dfaSDave Chinner for (j = (i - 1); j >= 0 && !try_lock; j--) { 488b3b14aacSChristoph Hellwig lp = &ips[j]->i_itemp->ili_item; 48922525c17SDave Chinner if (lp && test_bit(XFS_LI_IN_AIL, &lp->li_flags)) 490c24b5dfaSDave Chinner try_lock++; 491c24b5dfaSDave Chinner } 492c24b5dfaSDave Chinner } 493c24b5dfaSDave Chinner 494c24b5dfaSDave Chinner /* 495c24b5dfaSDave Chinner * If any of the previous locks we have locked is in the AIL, 496c24b5dfaSDave Chinner * we must TRY to get the second and subsequent locks. If 497c24b5dfaSDave Chinner * we can't get any, we must release all we have 498c24b5dfaSDave Chinner * and try again. 499c24b5dfaSDave Chinner */ 50095afcf5cSDave Chinner if (!try_lock) { 50195afcf5cSDave Chinner xfs_ilock(ips[i], xfs_lock_inumorder(lock_mode, i)); 50295afcf5cSDave Chinner continue; 50395afcf5cSDave Chinner } 504c24b5dfaSDave Chinner 50595afcf5cSDave Chinner /* try_lock means we have an inode locked that is in the AIL. */ 506c24b5dfaSDave Chinner ASSERT(i != 0); 50795afcf5cSDave Chinner if (xfs_ilock_nowait(ips[i], xfs_lock_inumorder(lock_mode, i))) 50895afcf5cSDave Chinner continue; 50995afcf5cSDave Chinner 51095afcf5cSDave Chinner /* 51195afcf5cSDave Chinner * Unlock all previous guys and try again. xfs_iunlock will try 51295afcf5cSDave Chinner * to push the tail if the inode is in the AIL. 51395afcf5cSDave Chinner */ 514c24b5dfaSDave Chinner attempts++; 515c24b5dfaSDave Chinner for (j = i - 1; j >= 0; j--) { 516c24b5dfaSDave Chinner /* 51795afcf5cSDave Chinner * Check to see if we've already unlocked this one. Not 51895afcf5cSDave Chinner * the first one going back, and the inode ptr is the 51995afcf5cSDave Chinner * same. 520c24b5dfaSDave Chinner */ 52195afcf5cSDave Chinner if (j != (i - 1) && ips[j] == ips[j + 1]) 522c24b5dfaSDave Chinner continue; 523c24b5dfaSDave Chinner 524c24b5dfaSDave Chinner xfs_iunlock(ips[j], lock_mode); 525c24b5dfaSDave Chinner } 526c24b5dfaSDave Chinner 527c24b5dfaSDave Chinner if ((attempts % 5) == 0) { 528c24b5dfaSDave Chinner delay(1); /* Don't just spin the CPU */ 529c24b5dfaSDave Chinner } 530c24b5dfaSDave Chinner i = 0; 531c24b5dfaSDave Chinner try_lock = 0; 532c24b5dfaSDave Chinner goto again; 533c24b5dfaSDave Chinner } 534c24b5dfaSDave Chinner } 535c24b5dfaSDave Chinner 536c24b5dfaSDave Chinner /* 537653c60b6SDave Chinner * xfs_lock_two_inodes() can only be used to lock one type of lock at a time - 5387c2d238aSDarrick J. Wong * the mmaplock or the ilock, but not more than one type at a time. If we lock 5397c2d238aSDarrick J. Wong * more than one at a time, lockdep will report false positives saying we have 5407c2d238aSDarrick J. Wong * violated locking orders. The iolock must be double-locked separately since 5417c2d238aSDarrick J. Wong * we use i_rwsem for that. We now support taking one lock EXCL and the other 5427c2d238aSDarrick J. Wong * SHARED. 543c24b5dfaSDave Chinner */ 544c24b5dfaSDave Chinner void 545c24b5dfaSDave Chinner xfs_lock_two_inodes( 5467c2d238aSDarrick J. Wong struct xfs_inode *ip0, 5477c2d238aSDarrick J. Wong uint ip0_mode, 5487c2d238aSDarrick J. Wong struct xfs_inode *ip1, 5497c2d238aSDarrick J. Wong uint ip1_mode) 550c24b5dfaSDave Chinner { 5517c2d238aSDarrick J. Wong struct xfs_inode *temp; 5527c2d238aSDarrick J. Wong uint mode_temp; 553c24b5dfaSDave Chinner int attempts = 0; 554efe2330fSChristoph Hellwig struct xfs_log_item *lp; 555c24b5dfaSDave Chinner 5567c2d238aSDarrick J. Wong ASSERT(hweight32(ip0_mode) == 1); 5577c2d238aSDarrick J. Wong ASSERT(hweight32(ip1_mode) == 1); 5587c2d238aSDarrick J. Wong ASSERT(!(ip0_mode & (XFS_IOLOCK_SHARED|XFS_IOLOCK_EXCL))); 5597c2d238aSDarrick J. Wong ASSERT(!(ip1_mode & (XFS_IOLOCK_SHARED|XFS_IOLOCK_EXCL))); 5607c2d238aSDarrick J. Wong ASSERT(!(ip0_mode & (XFS_MMAPLOCK_SHARED|XFS_MMAPLOCK_EXCL)) || 5617c2d238aSDarrick J. Wong !(ip0_mode & (XFS_ILOCK_SHARED|XFS_ILOCK_EXCL))); 5627c2d238aSDarrick J. Wong ASSERT(!(ip1_mode & (XFS_MMAPLOCK_SHARED|XFS_MMAPLOCK_EXCL)) || 5637c2d238aSDarrick J. Wong !(ip1_mode & (XFS_ILOCK_SHARED|XFS_ILOCK_EXCL))); 5647c2d238aSDarrick J. Wong ASSERT(!(ip1_mode & (XFS_MMAPLOCK_SHARED|XFS_MMAPLOCK_EXCL)) || 5657c2d238aSDarrick J. Wong !(ip0_mode & (XFS_ILOCK_SHARED|XFS_ILOCK_EXCL))); 5667c2d238aSDarrick J. Wong ASSERT(!(ip0_mode & (XFS_MMAPLOCK_SHARED|XFS_MMAPLOCK_EXCL)) || 5677c2d238aSDarrick J. Wong !(ip1_mode & (XFS_ILOCK_SHARED|XFS_ILOCK_EXCL))); 568653c60b6SDave Chinner 569c24b5dfaSDave Chinner ASSERT(ip0->i_ino != ip1->i_ino); 570c24b5dfaSDave Chinner 571c24b5dfaSDave Chinner if (ip0->i_ino > ip1->i_ino) { 572c24b5dfaSDave Chinner temp = ip0; 573c24b5dfaSDave Chinner ip0 = ip1; 574c24b5dfaSDave Chinner ip1 = temp; 5757c2d238aSDarrick J. Wong mode_temp = ip0_mode; 5767c2d238aSDarrick J. Wong ip0_mode = ip1_mode; 5777c2d238aSDarrick J. Wong ip1_mode = mode_temp; 578c24b5dfaSDave Chinner } 579c24b5dfaSDave Chinner 580c24b5dfaSDave Chinner again: 5817c2d238aSDarrick J. Wong xfs_ilock(ip0, xfs_lock_inumorder(ip0_mode, 0)); 582c24b5dfaSDave Chinner 583c24b5dfaSDave Chinner /* 584c24b5dfaSDave Chinner * If the first lock we have locked is in the AIL, we must TRY to get 585c24b5dfaSDave Chinner * the second lock. If we can't get it, we must release the first one 586c24b5dfaSDave Chinner * and try again. 587c24b5dfaSDave Chinner */ 588b3b14aacSChristoph Hellwig lp = &ip0->i_itemp->ili_item; 58922525c17SDave Chinner if (lp && test_bit(XFS_LI_IN_AIL, &lp->li_flags)) { 5907c2d238aSDarrick J. Wong if (!xfs_ilock_nowait(ip1, xfs_lock_inumorder(ip1_mode, 1))) { 5917c2d238aSDarrick J. Wong xfs_iunlock(ip0, ip0_mode); 592c24b5dfaSDave Chinner if ((++attempts % 5) == 0) 593c24b5dfaSDave Chinner delay(1); /* Don't just spin the CPU */ 594c24b5dfaSDave Chinner goto again; 595c24b5dfaSDave Chinner } 596c24b5dfaSDave Chinner } else { 5977c2d238aSDarrick J. Wong xfs_ilock(ip1, xfs_lock_inumorder(ip1_mode, 1)); 598c24b5dfaSDave Chinner } 599c24b5dfaSDave Chinner } 600c24b5dfaSDave Chinner 601fa96acadSDave Chinner void 602fa96acadSDave Chinner __xfs_iflock( 603fa96acadSDave Chinner struct xfs_inode *ip) 604fa96acadSDave Chinner { 605fa96acadSDave Chinner wait_queue_head_t *wq = bit_waitqueue(&ip->i_flags, __XFS_IFLOCK_BIT); 606fa96acadSDave Chinner DEFINE_WAIT_BIT(wait, &ip->i_flags, __XFS_IFLOCK_BIT); 607fa96acadSDave Chinner 608fa96acadSDave Chinner do { 60921417136SIngo Molnar prepare_to_wait_exclusive(wq, &wait.wq_entry, TASK_UNINTERRUPTIBLE); 610fa96acadSDave Chinner if (xfs_isiflocked(ip)) 611fa96acadSDave Chinner io_schedule(); 612fa96acadSDave Chinner } while (!xfs_iflock_nowait(ip)); 613fa96acadSDave Chinner 61421417136SIngo Molnar finish_wait(wq, &wait.wq_entry); 615fa96acadSDave Chinner } 616fa96acadSDave Chinner 6171da177e4SLinus Torvalds STATIC uint 6181da177e4SLinus Torvalds _xfs_dic2xflags( 619c8ce540dSDarrick J. Wong uint16_t di_flags, 62058f88ca2SDave Chinner uint64_t di_flags2, 62158f88ca2SDave Chinner bool has_attr) 6221da177e4SLinus Torvalds { 6231da177e4SLinus Torvalds uint flags = 0; 6241da177e4SLinus Torvalds 6251da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_ANY) { 6261da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_REALTIME) 627e7b89481SDave Chinner flags |= FS_XFLAG_REALTIME; 6281da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_PREALLOC) 629e7b89481SDave Chinner flags |= FS_XFLAG_PREALLOC; 6301da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_IMMUTABLE) 631e7b89481SDave Chinner flags |= FS_XFLAG_IMMUTABLE; 6321da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_APPEND) 633e7b89481SDave Chinner flags |= FS_XFLAG_APPEND; 6341da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_SYNC) 635e7b89481SDave Chinner flags |= FS_XFLAG_SYNC; 6361da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_NOATIME) 637e7b89481SDave Chinner flags |= FS_XFLAG_NOATIME; 6381da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_NODUMP) 639e7b89481SDave Chinner flags |= FS_XFLAG_NODUMP; 6401da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_RTINHERIT) 641e7b89481SDave Chinner flags |= FS_XFLAG_RTINHERIT; 6421da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_PROJINHERIT) 643e7b89481SDave Chinner flags |= FS_XFLAG_PROJINHERIT; 6441da177e4SLinus Torvalds if (di_flags & XFS_DIFLAG_NOSYMLINKS) 645e7b89481SDave Chinner flags |= FS_XFLAG_NOSYMLINKS; 646dd9f438eSNathan Scott if (di_flags & XFS_DIFLAG_EXTSIZE) 647e7b89481SDave Chinner flags |= FS_XFLAG_EXTSIZE; 648dd9f438eSNathan Scott if (di_flags & XFS_DIFLAG_EXTSZINHERIT) 649e7b89481SDave Chinner flags |= FS_XFLAG_EXTSZINHERIT; 650d3446eacSBarry Naujok if (di_flags & XFS_DIFLAG_NODEFRAG) 651e7b89481SDave Chinner flags |= FS_XFLAG_NODEFRAG; 6522a82b8beSDavid Chinner if (di_flags & XFS_DIFLAG_FILESTREAM) 653e7b89481SDave Chinner flags |= FS_XFLAG_FILESTREAM; 6541da177e4SLinus Torvalds } 6551da177e4SLinus Torvalds 65658f88ca2SDave Chinner if (di_flags2 & XFS_DIFLAG2_ANY) { 65758f88ca2SDave Chinner if (di_flags2 & XFS_DIFLAG2_DAX) 65858f88ca2SDave Chinner flags |= FS_XFLAG_DAX; 659f7ca3522SDarrick J. Wong if (di_flags2 & XFS_DIFLAG2_COWEXTSIZE) 660f7ca3522SDarrick J. Wong flags |= FS_XFLAG_COWEXTSIZE; 66158f88ca2SDave Chinner } 66258f88ca2SDave Chinner 66358f88ca2SDave Chinner if (has_attr) 66458f88ca2SDave Chinner flags |= FS_XFLAG_HASATTR; 66558f88ca2SDave Chinner 6661da177e4SLinus Torvalds return flags; 6671da177e4SLinus Torvalds } 6681da177e4SLinus Torvalds 6691da177e4SLinus Torvalds uint 6701da177e4SLinus Torvalds xfs_ip2xflags( 67158f88ca2SDave Chinner struct xfs_inode *ip) 6721da177e4SLinus Torvalds { 67358f88ca2SDave Chinner struct xfs_icdinode *dic = &ip->i_d; 6741da177e4SLinus Torvalds 67558f88ca2SDave Chinner return _xfs_dic2xflags(dic->di_flags, dic->di_flags2, XFS_IFORK_Q(ip)); 6761da177e4SLinus Torvalds } 6771da177e4SLinus Torvalds 6781da177e4SLinus Torvalds /* 679c24b5dfaSDave Chinner * Lookups up an inode from "name". If ci_name is not NULL, then a CI match 680c24b5dfaSDave Chinner * is allowed, otherwise it has to be an exact match. If a CI match is found, 681c24b5dfaSDave Chinner * ci_name->name will point to a the actual name (caller must free) or 682c24b5dfaSDave Chinner * will be set to NULL if an exact match is found. 683c24b5dfaSDave Chinner */ 684c24b5dfaSDave Chinner int 685c24b5dfaSDave Chinner xfs_lookup( 686c24b5dfaSDave Chinner xfs_inode_t *dp, 687c24b5dfaSDave Chinner struct xfs_name *name, 688c24b5dfaSDave Chinner xfs_inode_t **ipp, 689c24b5dfaSDave Chinner struct xfs_name *ci_name) 690c24b5dfaSDave Chinner { 691c24b5dfaSDave Chinner xfs_ino_t inum; 692c24b5dfaSDave Chinner int error; 693c24b5dfaSDave Chinner 694c24b5dfaSDave Chinner trace_xfs_lookup(dp, name); 695c24b5dfaSDave Chinner 696c24b5dfaSDave Chinner if (XFS_FORCED_SHUTDOWN(dp->i_mount)) 6972451337dSDave Chinner return -EIO; 698c24b5dfaSDave Chinner 699c24b5dfaSDave Chinner error = xfs_dir_lookup(NULL, dp, name, &inum, ci_name); 700c24b5dfaSDave Chinner if (error) 701dbad7c99SDave Chinner goto out_unlock; 702c24b5dfaSDave Chinner 703c24b5dfaSDave Chinner error = xfs_iget(dp->i_mount, NULL, inum, 0, 0, ipp); 704c24b5dfaSDave Chinner if (error) 705c24b5dfaSDave Chinner goto out_free_name; 706c24b5dfaSDave Chinner 707c24b5dfaSDave Chinner return 0; 708c24b5dfaSDave Chinner 709c24b5dfaSDave Chinner out_free_name: 710c24b5dfaSDave Chinner if (ci_name) 711c24b5dfaSDave Chinner kmem_free(ci_name->name); 712dbad7c99SDave Chinner out_unlock: 713c24b5dfaSDave Chinner *ipp = NULL; 714c24b5dfaSDave Chinner return error; 715c24b5dfaSDave Chinner } 716c24b5dfaSDave Chinner 717c24b5dfaSDave Chinner /* 7181da177e4SLinus Torvalds * Allocate an inode on disk and return a copy of its in-core version. 7191da177e4SLinus Torvalds * The in-core inode is locked exclusively. Set mode, nlink, and rdev 7201da177e4SLinus Torvalds * appropriately within the inode. The uid and gid for the inode are 7211da177e4SLinus Torvalds * set according to the contents of the given cred structure. 7221da177e4SLinus Torvalds * 7231da177e4SLinus Torvalds * Use xfs_dialloc() to allocate the on-disk inode. If xfs_dialloc() 724cd856db6SCarlos Maiolino * has a free inode available, call xfs_iget() to obtain the in-core 725cd856db6SCarlos Maiolino * version of the allocated inode. Finally, fill in the inode and 726cd856db6SCarlos Maiolino * log its initial contents. In this case, ialloc_context would be 727cd856db6SCarlos Maiolino * set to NULL. 7281da177e4SLinus Torvalds * 729cd856db6SCarlos Maiolino * If xfs_dialloc() does not have an available inode, it will replenish 730cd856db6SCarlos Maiolino * its supply by doing an allocation. Since we can only do one 731cd856db6SCarlos Maiolino * allocation within a transaction without deadlocks, we must commit 732cd856db6SCarlos Maiolino * the current transaction before returning the inode itself. 733cd856db6SCarlos Maiolino * In this case, therefore, we will set ialloc_context and return. 7341da177e4SLinus Torvalds * The caller should then commit the current transaction, start a new 7351da177e4SLinus Torvalds * transaction, and call xfs_ialloc() again to actually get the inode. 7361da177e4SLinus Torvalds * 7371da177e4SLinus Torvalds * To ensure that some other process does not grab the inode that 7381da177e4SLinus Torvalds * was allocated during the first call to xfs_ialloc(), this routine 7391da177e4SLinus Torvalds * also returns the [locked] bp pointing to the head of the freelist 7401da177e4SLinus Torvalds * as ialloc_context. The caller should hold this buffer across 7411da177e4SLinus Torvalds * the commit and pass it back into this routine on the second call. 742b11f94d5SDavid Chinner * 743b11f94d5SDavid Chinner * If we are allocating quota inodes, we do not have a parent inode 744b11f94d5SDavid Chinner * to attach to or associate with (i.e. pip == NULL) because they 745b11f94d5SDavid Chinner * are not linked into the directory structure - they are attached 746b11f94d5SDavid Chinner * directly to the superblock - and so have no parent. 7471da177e4SLinus Torvalds */ 7480d5a75e9SEric Sandeen static int 7491da177e4SLinus Torvalds xfs_ialloc( 7501da177e4SLinus Torvalds xfs_trans_t *tp, 7511da177e4SLinus Torvalds xfs_inode_t *pip, 752576b1d67SAl Viro umode_t mode, 75331b084aeSNathan Scott xfs_nlink_t nlink, 75466f36464SChristoph Hellwig dev_t rdev, 7556743099cSArkadiusz Mi?kiewicz prid_t prid, 7561da177e4SLinus Torvalds xfs_buf_t **ialloc_context, 7571da177e4SLinus Torvalds xfs_inode_t **ipp) 7581da177e4SLinus Torvalds { 75993848a99SChristoph Hellwig struct xfs_mount *mp = tp->t_mountp; 7601da177e4SLinus Torvalds xfs_ino_t ino; 7611da177e4SLinus Torvalds xfs_inode_t *ip; 7621da177e4SLinus Torvalds uint flags; 7631da177e4SLinus Torvalds int error; 76495582b00SDeepa Dinamani struct timespec64 tv; 7653987848cSDave Chinner struct inode *inode; 7661da177e4SLinus Torvalds 7671da177e4SLinus Torvalds /* 7681da177e4SLinus Torvalds * Call the space management code to pick 7691da177e4SLinus Torvalds * the on-disk inode to be allocated. 7701da177e4SLinus Torvalds */ 771f59cf5c2SChristoph Hellwig error = xfs_dialloc(tp, pip ? pip->i_ino : 0, mode, 77208358906SChristoph Hellwig ialloc_context, &ino); 773bf904248SDavid Chinner if (error) 7741da177e4SLinus Torvalds return error; 77508358906SChristoph Hellwig if (*ialloc_context || ino == NULLFSINO) { 7761da177e4SLinus Torvalds *ipp = NULL; 7771da177e4SLinus Torvalds return 0; 7781da177e4SLinus Torvalds } 7791da177e4SLinus Torvalds ASSERT(*ialloc_context == NULL); 7801da177e4SLinus Torvalds 7811da177e4SLinus Torvalds /* 7828b26984dSDave Chinner * Protect against obviously corrupt allocation btree records. Later 7838b26984dSDave Chinner * xfs_iget checks will catch re-allocation of other active in-memory 7848b26984dSDave Chinner * and on-disk inodes. If we don't catch reallocating the parent inode 7858b26984dSDave Chinner * here we will deadlock in xfs_iget() so we have to do these checks 7868b26984dSDave Chinner * first. 7878b26984dSDave Chinner */ 7888b26984dSDave Chinner if ((pip && ino == pip->i_ino) || !xfs_verify_dir_ino(mp, ino)) { 7898b26984dSDave Chinner xfs_alert(mp, "Allocated a known in-use inode 0x%llx!", ino); 7908b26984dSDave Chinner return -EFSCORRUPTED; 7918b26984dSDave Chinner } 7928b26984dSDave Chinner 7938b26984dSDave Chinner /* 7941da177e4SLinus Torvalds * Get the in-core inode with the lock held exclusively. 7951da177e4SLinus Torvalds * This is because we're setting fields here we need 7961da177e4SLinus Torvalds * to prevent others from looking at until we're done. 7971da177e4SLinus Torvalds */ 79893848a99SChristoph Hellwig error = xfs_iget(mp, tp, ino, XFS_IGET_CREATE, 799ec3ba85fSChristoph Hellwig XFS_ILOCK_EXCL, &ip); 800bf904248SDavid Chinner if (error) 8011da177e4SLinus Torvalds return error; 8021da177e4SLinus Torvalds ASSERT(ip != NULL); 8033987848cSDave Chinner inode = VFS_I(ip); 804c19b3b05SDave Chinner inode->i_mode = mode; 80554d7b5c1SDave Chinner set_nlink(inode, nlink); 8063d8f2821SChristoph Hellwig inode->i_uid = current_fsuid(); 80766f36464SChristoph Hellwig inode->i_rdev = rdev; 808de7a866fSChristoph Hellwig ip->i_d.di_projid = prid; 8091da177e4SLinus Torvalds 810bd186aa9SChristoph Hellwig if (pip && XFS_INHERIT_GID(pip)) { 8113d8f2821SChristoph Hellwig inode->i_gid = VFS_I(pip)->i_gid; 812c19b3b05SDave Chinner if ((VFS_I(pip)->i_mode & S_ISGID) && S_ISDIR(mode)) 813c19b3b05SDave Chinner inode->i_mode |= S_ISGID; 8143d8f2821SChristoph Hellwig } else { 8153d8f2821SChristoph Hellwig inode->i_gid = current_fsgid(); 8161da177e4SLinus Torvalds } 8171da177e4SLinus Torvalds 8181da177e4SLinus Torvalds /* 8191da177e4SLinus Torvalds * If the group ID of the new file does not match the effective group 8201da177e4SLinus Torvalds * ID or one of the supplementary group IDs, the S_ISGID bit is cleared 8211da177e4SLinus Torvalds * (and only if the irix_sgid_inherit compatibility variable is set). 8221da177e4SLinus Torvalds */ 82354295159SChristoph Hellwig if (irix_sgid_inherit && 82454295159SChristoph Hellwig (inode->i_mode & S_ISGID) && !in_group_p(inode->i_gid)) 825c19b3b05SDave Chinner inode->i_mode &= ~S_ISGID; 8261da177e4SLinus Torvalds 8271da177e4SLinus Torvalds ip->i_d.di_size = 0; 828daf83964SChristoph Hellwig ip->i_df.if_nextents = 0; 8291da177e4SLinus Torvalds ASSERT(ip->i_d.di_nblocks == 0); 830dff35fd4SChristoph Hellwig 831c2050a45SDeepa Dinamani tv = current_time(inode); 8323987848cSDave Chinner inode->i_mtime = tv; 8333987848cSDave Chinner inode->i_atime = tv; 8343987848cSDave Chinner inode->i_ctime = tv; 835dff35fd4SChristoph Hellwig 8361da177e4SLinus Torvalds ip->i_d.di_extsize = 0; 8371da177e4SLinus Torvalds ip->i_d.di_dmevmask = 0; 8381da177e4SLinus Torvalds ip->i_d.di_dmstate = 0; 8391da177e4SLinus Torvalds ip->i_d.di_flags = 0; 84093848a99SChristoph Hellwig 8416471e9c5SChristoph Hellwig if (xfs_sb_version_has_v3inode(&mp->m_sb)) { 842f0e28280SJeff Layton inode_set_iversion(inode, 1); 84393848a99SChristoph Hellwig ip->i_d.di_flags2 = 0; 844f7ca3522SDarrick J. Wong ip->i_d.di_cowextsize = 0; 8458d2d878dSChristoph Hellwig ip->i_d.di_crtime = tv; 84693848a99SChristoph Hellwig } 84793848a99SChristoph Hellwig 8481da177e4SLinus Torvalds flags = XFS_ILOG_CORE; 8491da177e4SLinus Torvalds switch (mode & S_IFMT) { 8501da177e4SLinus Torvalds case S_IFIFO: 8511da177e4SLinus Torvalds case S_IFCHR: 8521da177e4SLinus Torvalds case S_IFBLK: 8531da177e4SLinus Torvalds case S_IFSOCK: 854f7e67b20SChristoph Hellwig ip->i_df.if_format = XFS_DINODE_FMT_DEV; 8551da177e4SLinus Torvalds ip->i_df.if_flags = 0; 8561da177e4SLinus Torvalds flags |= XFS_ILOG_DEV; 8571da177e4SLinus Torvalds break; 8581da177e4SLinus Torvalds case S_IFREG: 8591da177e4SLinus Torvalds case S_IFDIR: 860b11f94d5SDavid Chinner if (pip && (pip->i_d.di_flags & XFS_DIFLAG_ANY)) { 861365ca83dSNathan Scott uint di_flags = 0; 862365ca83dSNathan Scott 863abbede1bSAl Viro if (S_ISDIR(mode)) { 864365ca83dSNathan Scott if (pip->i_d.di_flags & XFS_DIFLAG_RTINHERIT) 865365ca83dSNathan Scott di_flags |= XFS_DIFLAG_RTINHERIT; 866dd9f438eSNathan Scott if (pip->i_d.di_flags & XFS_DIFLAG_EXTSZINHERIT) { 867dd9f438eSNathan Scott di_flags |= XFS_DIFLAG_EXTSZINHERIT; 868dd9f438eSNathan Scott ip->i_d.di_extsize = pip->i_d.di_extsize; 869dd9f438eSNathan Scott } 8709336e3a7SDave Chinner if (pip->i_d.di_flags & XFS_DIFLAG_PROJINHERIT) 8719336e3a7SDave Chinner di_flags |= XFS_DIFLAG_PROJINHERIT; 872abbede1bSAl Viro } else if (S_ISREG(mode)) { 873613d7043SChristoph Hellwig if (pip->i_d.di_flags & XFS_DIFLAG_RTINHERIT) 874365ca83dSNathan Scott di_flags |= XFS_DIFLAG_REALTIME; 875dd9f438eSNathan Scott if (pip->i_d.di_flags & XFS_DIFLAG_EXTSZINHERIT) { 876dd9f438eSNathan Scott di_flags |= XFS_DIFLAG_EXTSIZE; 877dd9f438eSNathan Scott ip->i_d.di_extsize = pip->i_d.di_extsize; 878dd9f438eSNathan Scott } 8791da177e4SLinus Torvalds } 8801da177e4SLinus Torvalds if ((pip->i_d.di_flags & XFS_DIFLAG_NOATIME) && 8811da177e4SLinus Torvalds xfs_inherit_noatime) 882365ca83dSNathan Scott di_flags |= XFS_DIFLAG_NOATIME; 8831da177e4SLinus Torvalds if ((pip->i_d.di_flags & XFS_DIFLAG_NODUMP) && 8841da177e4SLinus Torvalds xfs_inherit_nodump) 885365ca83dSNathan Scott di_flags |= XFS_DIFLAG_NODUMP; 8861da177e4SLinus Torvalds if ((pip->i_d.di_flags & XFS_DIFLAG_SYNC) && 8871da177e4SLinus Torvalds xfs_inherit_sync) 888365ca83dSNathan Scott di_flags |= XFS_DIFLAG_SYNC; 8891da177e4SLinus Torvalds if ((pip->i_d.di_flags & XFS_DIFLAG_NOSYMLINKS) && 8901da177e4SLinus Torvalds xfs_inherit_nosymlinks) 891365ca83dSNathan Scott di_flags |= XFS_DIFLAG_NOSYMLINKS; 892d3446eacSBarry Naujok if ((pip->i_d.di_flags & XFS_DIFLAG_NODEFRAG) && 893d3446eacSBarry Naujok xfs_inherit_nodefrag) 894d3446eacSBarry Naujok di_flags |= XFS_DIFLAG_NODEFRAG; 8952a82b8beSDavid Chinner if (pip->i_d.di_flags & XFS_DIFLAG_FILESTREAM) 8962a82b8beSDavid Chinner di_flags |= XFS_DIFLAG_FILESTREAM; 89758f88ca2SDave Chinner 898365ca83dSNathan Scott ip->i_d.di_flags |= di_flags; 8991da177e4SLinus Torvalds } 900b3d1d375SChristoph Hellwig if (pip && (pip->i_d.di_flags2 & XFS_DIFLAG2_ANY)) { 901f7ca3522SDarrick J. Wong if (pip->i_d.di_flags2 & XFS_DIFLAG2_COWEXTSIZE) { 902b3d1d375SChristoph Hellwig ip->i_d.di_flags2 |= XFS_DIFLAG2_COWEXTSIZE; 903f7ca3522SDarrick J. Wong ip->i_d.di_cowextsize = pip->i_d.di_cowextsize; 904f7ca3522SDarrick J. Wong } 90556bdf855SLukas Czerner if (pip->i_d.di_flags2 & XFS_DIFLAG2_DAX) 906b3d1d375SChristoph Hellwig ip->i_d.di_flags2 |= XFS_DIFLAG2_DAX; 907f7ca3522SDarrick J. Wong } 9081da177e4SLinus Torvalds /* FALLTHROUGH */ 9091da177e4SLinus Torvalds case S_IFLNK: 910f7e67b20SChristoph Hellwig ip->i_df.if_format = XFS_DINODE_FMT_EXTENTS; 9111da177e4SLinus Torvalds ip->i_df.if_flags = XFS_IFEXTENTS; 912fcacbc3fSChristoph Hellwig ip->i_df.if_bytes = 0; 9136bdcf26aSChristoph Hellwig ip->i_df.if_u1.if_root = NULL; 9141da177e4SLinus Torvalds break; 9151da177e4SLinus Torvalds default: 9161da177e4SLinus Torvalds ASSERT(0); 9171da177e4SLinus Torvalds } 9181da177e4SLinus Torvalds 9191da177e4SLinus Torvalds /* 9201da177e4SLinus Torvalds * Log the new values stuffed into the inode. 9211da177e4SLinus Torvalds */ 922ddc3415aSChristoph Hellwig xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL); 9231da177e4SLinus Torvalds xfs_trans_log_inode(tp, ip, flags); 9241da177e4SLinus Torvalds 92558c90473SDave Chinner /* now that we have an i_mode we can setup the inode structure */ 92641be8bedSChristoph Hellwig xfs_setup_inode(ip); 9271da177e4SLinus Torvalds 9281da177e4SLinus Torvalds *ipp = ip; 9291da177e4SLinus Torvalds return 0; 9301da177e4SLinus Torvalds } 9311da177e4SLinus Torvalds 932e546cb79SDave Chinner /* 933e546cb79SDave Chinner * Allocates a new inode from disk and return a pointer to the 934e546cb79SDave Chinner * incore copy. This routine will internally commit the current 935e546cb79SDave Chinner * transaction and allocate a new one if the Space Manager needed 936e546cb79SDave Chinner * to do an allocation to replenish the inode free-list. 937e546cb79SDave Chinner * 938e546cb79SDave Chinner * This routine is designed to be called from xfs_create and 939e546cb79SDave Chinner * xfs_create_dir. 940e546cb79SDave Chinner * 941e546cb79SDave Chinner */ 942e546cb79SDave Chinner int 943e546cb79SDave Chinner xfs_dir_ialloc( 944e546cb79SDave Chinner xfs_trans_t **tpp, /* input: current transaction; 945e546cb79SDave Chinner output: may be a new transaction. */ 946e546cb79SDave Chinner xfs_inode_t *dp, /* directory within whose allocate 947e546cb79SDave Chinner the inode. */ 948e546cb79SDave Chinner umode_t mode, 949e546cb79SDave Chinner xfs_nlink_t nlink, 95066f36464SChristoph Hellwig dev_t rdev, 951e546cb79SDave Chinner prid_t prid, /* project id */ 952c959025eSChandan Rajendra xfs_inode_t **ipp) /* pointer to inode; it will be 953e546cb79SDave Chinner locked. */ 954e546cb79SDave Chinner { 955e546cb79SDave Chinner xfs_trans_t *tp; 956e546cb79SDave Chinner xfs_inode_t *ip; 957e546cb79SDave Chinner xfs_buf_t *ialloc_context = NULL; 958e546cb79SDave Chinner int code; 959e546cb79SDave Chinner void *dqinfo; 960e546cb79SDave Chinner uint tflags; 961e546cb79SDave Chinner 962e546cb79SDave Chinner tp = *tpp; 963e546cb79SDave Chinner ASSERT(tp->t_flags & XFS_TRANS_PERM_LOG_RES); 964e546cb79SDave Chinner 965e546cb79SDave Chinner /* 966e546cb79SDave Chinner * xfs_ialloc will return a pointer to an incore inode if 967e546cb79SDave Chinner * the Space Manager has an available inode on the free 968e546cb79SDave Chinner * list. Otherwise, it will do an allocation and replenish 969e546cb79SDave Chinner * the freelist. Since we can only do one allocation per 970e546cb79SDave Chinner * transaction without deadlocks, we will need to commit the 971e546cb79SDave Chinner * current transaction and start a new one. We will then 972e546cb79SDave Chinner * need to call xfs_ialloc again to get the inode. 973e546cb79SDave Chinner * 974e546cb79SDave Chinner * If xfs_ialloc did an allocation to replenish the freelist, 975e546cb79SDave Chinner * it returns the bp containing the head of the freelist as 976e546cb79SDave Chinner * ialloc_context. We will hold a lock on it across the 977e546cb79SDave Chinner * transaction commit so that no other process can steal 978e546cb79SDave Chinner * the inode(s) that we've just allocated. 979e546cb79SDave Chinner */ 980f59cf5c2SChristoph Hellwig code = xfs_ialloc(tp, dp, mode, nlink, rdev, prid, &ialloc_context, 981f59cf5c2SChristoph Hellwig &ip); 982e546cb79SDave Chinner 983e546cb79SDave Chinner /* 984e546cb79SDave Chinner * Return an error if we were unable to allocate a new inode. 985e546cb79SDave Chinner * This should only happen if we run out of space on disk or 986e546cb79SDave Chinner * encounter a disk error. 987e546cb79SDave Chinner */ 988e546cb79SDave Chinner if (code) { 989e546cb79SDave Chinner *ipp = NULL; 990e546cb79SDave Chinner return code; 991e546cb79SDave Chinner } 992e546cb79SDave Chinner if (!ialloc_context && !ip) { 993e546cb79SDave Chinner *ipp = NULL; 9942451337dSDave Chinner return -ENOSPC; 995e546cb79SDave Chinner } 996e546cb79SDave Chinner 997e546cb79SDave Chinner /* 998e546cb79SDave Chinner * If the AGI buffer is non-NULL, then we were unable to get an 999e546cb79SDave Chinner * inode in one operation. We need to commit the current 1000e546cb79SDave Chinner * transaction and call xfs_ialloc() again. It is guaranteed 1001e546cb79SDave Chinner * to succeed the second time. 1002e546cb79SDave Chinner */ 1003e546cb79SDave Chinner if (ialloc_context) { 1004e546cb79SDave Chinner /* 1005e546cb79SDave Chinner * Normally, xfs_trans_commit releases all the locks. 1006e546cb79SDave Chinner * We call bhold to hang on to the ialloc_context across 1007e546cb79SDave Chinner * the commit. Holding this buffer prevents any other 1008e546cb79SDave Chinner * processes from doing any allocations in this 1009e546cb79SDave Chinner * allocation group. 1010e546cb79SDave Chinner */ 1011e546cb79SDave Chinner xfs_trans_bhold(tp, ialloc_context); 1012e546cb79SDave Chinner 1013e546cb79SDave Chinner /* 1014e546cb79SDave Chinner * We want the quota changes to be associated with the next 1015e546cb79SDave Chinner * transaction, NOT this one. So, detach the dqinfo from this 1016e546cb79SDave Chinner * and attach it to the next transaction. 1017e546cb79SDave Chinner */ 1018e546cb79SDave Chinner dqinfo = NULL; 1019e546cb79SDave Chinner tflags = 0; 1020e546cb79SDave Chinner if (tp->t_dqinfo) { 1021e546cb79SDave Chinner dqinfo = (void *)tp->t_dqinfo; 1022e546cb79SDave Chinner tp->t_dqinfo = NULL; 1023e546cb79SDave Chinner tflags = tp->t_flags & XFS_TRANS_DQ_DIRTY; 1024e546cb79SDave Chinner tp->t_flags &= ~(XFS_TRANS_DQ_DIRTY); 1025e546cb79SDave Chinner } 1026e546cb79SDave Chinner 1027411350dfSChristoph Hellwig code = xfs_trans_roll(&tp); 10283d3c8b52SJie Liu 1029e546cb79SDave Chinner /* 1030e546cb79SDave Chinner * Re-attach the quota info that we detached from prev trx. 1031e546cb79SDave Chinner */ 1032e546cb79SDave Chinner if (dqinfo) { 1033e546cb79SDave Chinner tp->t_dqinfo = dqinfo; 1034e546cb79SDave Chinner tp->t_flags |= tflags; 1035e546cb79SDave Chinner } 1036e546cb79SDave Chinner 1037e546cb79SDave Chinner if (code) { 1038e546cb79SDave Chinner xfs_buf_relse(ialloc_context); 10392e6db6c4SChristoph Hellwig *tpp = tp; 1040e546cb79SDave Chinner *ipp = NULL; 1041e546cb79SDave Chinner return code; 1042e546cb79SDave Chinner } 1043e546cb79SDave Chinner xfs_trans_bjoin(tp, ialloc_context); 1044e546cb79SDave Chinner 1045e546cb79SDave Chinner /* 1046e546cb79SDave Chinner * Call ialloc again. Since we've locked out all 1047e546cb79SDave Chinner * other allocations in this allocation group, 1048e546cb79SDave Chinner * this call should always succeed. 1049e546cb79SDave Chinner */ 1050e546cb79SDave Chinner code = xfs_ialloc(tp, dp, mode, nlink, rdev, prid, 1051f59cf5c2SChristoph Hellwig &ialloc_context, &ip); 1052e546cb79SDave Chinner 1053e546cb79SDave Chinner /* 1054e546cb79SDave Chinner * If we get an error at this point, return to the caller 1055e546cb79SDave Chinner * so that the current transaction can be aborted. 1056e546cb79SDave Chinner */ 1057e546cb79SDave Chinner if (code) { 1058e546cb79SDave Chinner *tpp = tp; 1059e546cb79SDave Chinner *ipp = NULL; 1060e546cb79SDave Chinner return code; 1061e546cb79SDave Chinner } 1062e546cb79SDave Chinner ASSERT(!ialloc_context && ip); 1063e546cb79SDave Chinner 1064e546cb79SDave Chinner } 1065e546cb79SDave Chinner 1066e546cb79SDave Chinner *ipp = ip; 1067e546cb79SDave Chinner *tpp = tp; 1068e546cb79SDave Chinner 1069e546cb79SDave Chinner return 0; 1070e546cb79SDave Chinner } 1071e546cb79SDave Chinner 1072e546cb79SDave Chinner /* 107354d7b5c1SDave Chinner * Decrement the link count on an inode & log the change. If this causes the 107454d7b5c1SDave Chinner * link count to go to zero, move the inode to AGI unlinked list so that it can 107554d7b5c1SDave Chinner * be freed when the last active reference goes away via xfs_inactive(). 1076e546cb79SDave Chinner */ 10770d5a75e9SEric Sandeen static int /* error */ 1078e546cb79SDave Chinner xfs_droplink( 1079e546cb79SDave Chinner xfs_trans_t *tp, 1080e546cb79SDave Chinner xfs_inode_t *ip) 1081e546cb79SDave Chinner { 1082e546cb79SDave Chinner xfs_trans_ichgtime(tp, ip, XFS_ICHGTIME_CHG); 1083e546cb79SDave Chinner 1084e546cb79SDave Chinner drop_nlink(VFS_I(ip)); 1085e546cb79SDave Chinner xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE); 1086e546cb79SDave Chinner 108754d7b5c1SDave Chinner if (VFS_I(ip)->i_nlink) 108854d7b5c1SDave Chinner return 0; 108954d7b5c1SDave Chinner 109054d7b5c1SDave Chinner return xfs_iunlink(tp, ip); 1091e546cb79SDave Chinner } 1092e546cb79SDave Chinner 1093e546cb79SDave Chinner /* 1094e546cb79SDave Chinner * Increment the link count on an inode & log the change. 1095e546cb79SDave Chinner */ 109691083269SEric Sandeen static void 1097e546cb79SDave Chinner xfs_bumplink( 1098e546cb79SDave Chinner xfs_trans_t *tp, 1099e546cb79SDave Chinner xfs_inode_t *ip) 1100e546cb79SDave Chinner { 1101e546cb79SDave Chinner xfs_trans_ichgtime(tp, ip, XFS_ICHGTIME_CHG); 1102e546cb79SDave Chinner 1103e546cb79SDave Chinner inc_nlink(VFS_I(ip)); 1104e546cb79SDave Chinner xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE); 1105e546cb79SDave Chinner } 1106e546cb79SDave Chinner 1107c24b5dfaSDave Chinner int 1108c24b5dfaSDave Chinner xfs_create( 1109c24b5dfaSDave Chinner xfs_inode_t *dp, 1110c24b5dfaSDave Chinner struct xfs_name *name, 1111c24b5dfaSDave Chinner umode_t mode, 111266f36464SChristoph Hellwig dev_t rdev, 1113c24b5dfaSDave Chinner xfs_inode_t **ipp) 1114c24b5dfaSDave Chinner { 1115c24b5dfaSDave Chinner int is_dir = S_ISDIR(mode); 1116c24b5dfaSDave Chinner struct xfs_mount *mp = dp->i_mount; 1117c24b5dfaSDave Chinner struct xfs_inode *ip = NULL; 1118c24b5dfaSDave Chinner struct xfs_trans *tp = NULL; 1119c24b5dfaSDave Chinner int error; 1120c24b5dfaSDave Chinner bool unlock_dp_on_error = false; 1121c24b5dfaSDave Chinner prid_t prid; 1122c24b5dfaSDave Chinner struct xfs_dquot *udqp = NULL; 1123c24b5dfaSDave Chinner struct xfs_dquot *gdqp = NULL; 1124c24b5dfaSDave Chinner struct xfs_dquot *pdqp = NULL; 1125062647a8SBrian Foster struct xfs_trans_res *tres; 1126c24b5dfaSDave Chinner uint resblks; 1127c24b5dfaSDave Chinner 1128c24b5dfaSDave Chinner trace_xfs_create(dp, name); 1129c24b5dfaSDave Chinner 1130c24b5dfaSDave Chinner if (XFS_FORCED_SHUTDOWN(mp)) 11312451337dSDave Chinner return -EIO; 1132c24b5dfaSDave Chinner 1133163467d3SZhi Yong Wu prid = xfs_get_initial_prid(dp); 1134c24b5dfaSDave Chinner 1135c24b5dfaSDave Chinner /* 1136c24b5dfaSDave Chinner * Make sure that we have allocated dquot(s) on disk. 1137c24b5dfaSDave Chinner */ 113854295159SChristoph Hellwig error = xfs_qm_vop_dqalloc(dp, current_fsuid(), current_fsgid(), prid, 1139c24b5dfaSDave Chinner XFS_QMOPT_QUOTALL | XFS_QMOPT_INHERIT, 1140c24b5dfaSDave Chinner &udqp, &gdqp, &pdqp); 1141c24b5dfaSDave Chinner if (error) 1142c24b5dfaSDave Chinner return error; 1143c24b5dfaSDave Chinner 1144c24b5dfaSDave Chinner if (is_dir) { 1145c24b5dfaSDave Chinner resblks = XFS_MKDIR_SPACE_RES(mp, name->len); 1146062647a8SBrian Foster tres = &M_RES(mp)->tr_mkdir; 1147c24b5dfaSDave Chinner } else { 1148c24b5dfaSDave Chinner resblks = XFS_CREATE_SPACE_RES(mp, name->len); 1149062647a8SBrian Foster tres = &M_RES(mp)->tr_create; 1150c24b5dfaSDave Chinner } 1151c24b5dfaSDave Chinner 1152c24b5dfaSDave Chinner /* 1153c24b5dfaSDave Chinner * Initially assume that the file does not exist and 1154c24b5dfaSDave Chinner * reserve the resources for that case. If that is not 1155c24b5dfaSDave Chinner * the case we'll drop the one we have and get a more 1156c24b5dfaSDave Chinner * appropriate transaction later. 1157c24b5dfaSDave Chinner */ 1158253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, tres, resblks, 0, 0, &tp); 11592451337dSDave Chinner if (error == -ENOSPC) { 1160c24b5dfaSDave Chinner /* flush outstanding delalloc blocks and retry */ 1161c24b5dfaSDave Chinner xfs_flush_inodes(mp); 1162253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, tres, resblks, 0, 0, &tp); 1163c24b5dfaSDave Chinner } 11644906e215SChristoph Hellwig if (error) 1165253f4911SChristoph Hellwig goto out_release_inode; 1166c24b5dfaSDave Chinner 116765523218SChristoph Hellwig xfs_ilock(dp, XFS_ILOCK_EXCL | XFS_ILOCK_PARENT); 1168c24b5dfaSDave Chinner unlock_dp_on_error = true; 1169c24b5dfaSDave Chinner 1170c24b5dfaSDave Chinner /* 1171c24b5dfaSDave Chinner * Reserve disk quota and the inode. 1172c24b5dfaSDave Chinner */ 1173c24b5dfaSDave Chinner error = xfs_trans_reserve_quota(tp, mp, udqp, gdqp, 1174c24b5dfaSDave Chinner pdqp, resblks, 1, 0); 1175c24b5dfaSDave Chinner if (error) 1176c24b5dfaSDave Chinner goto out_trans_cancel; 1177c24b5dfaSDave Chinner 1178c24b5dfaSDave Chinner /* 1179c24b5dfaSDave Chinner * A newly created regular or special file just has one directory 1180c24b5dfaSDave Chinner * entry pointing to them, but a directory also the "." entry 1181c24b5dfaSDave Chinner * pointing to itself. 1182c24b5dfaSDave Chinner */ 1183c959025eSChandan Rajendra error = xfs_dir_ialloc(&tp, dp, mode, is_dir ? 2 : 1, rdev, prid, &ip); 1184d6077aa3SJan Kara if (error) 1185c24b5dfaSDave Chinner goto out_trans_cancel; 1186c24b5dfaSDave Chinner 1187c24b5dfaSDave Chinner /* 1188c24b5dfaSDave Chinner * Now we join the directory inode to the transaction. We do not do it 1189c24b5dfaSDave Chinner * earlier because xfs_dir_ialloc might commit the previous transaction 1190c24b5dfaSDave Chinner * (and release all the locks). An error from here on will result in 1191c24b5dfaSDave Chinner * the transaction cancel unlocking dp so don't do it explicitly in the 1192c24b5dfaSDave Chinner * error path. 1193c24b5dfaSDave Chinner */ 119465523218SChristoph Hellwig xfs_trans_ijoin(tp, dp, XFS_ILOCK_EXCL); 1195c24b5dfaSDave Chinner unlock_dp_on_error = false; 1196c24b5dfaSDave Chinner 1197381eee69SBrian Foster error = xfs_dir_createname(tp, dp, name, ip->i_ino, 119863337b63SKaixu Xia resblks - XFS_IALLOC_SPACE_RES(mp)); 1199c24b5dfaSDave Chinner if (error) { 12002451337dSDave Chinner ASSERT(error != -ENOSPC); 12014906e215SChristoph Hellwig goto out_trans_cancel; 1202c24b5dfaSDave Chinner } 1203c24b5dfaSDave Chinner xfs_trans_ichgtime(tp, dp, XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG); 1204c24b5dfaSDave Chinner xfs_trans_log_inode(tp, dp, XFS_ILOG_CORE); 1205c24b5dfaSDave Chinner 1206c24b5dfaSDave Chinner if (is_dir) { 1207c24b5dfaSDave Chinner error = xfs_dir_init(tp, ip, dp); 1208c24b5dfaSDave Chinner if (error) 1209c8eac49eSBrian Foster goto out_trans_cancel; 1210c24b5dfaSDave Chinner 121191083269SEric Sandeen xfs_bumplink(tp, dp); 1212c24b5dfaSDave Chinner } 1213c24b5dfaSDave Chinner 1214c24b5dfaSDave Chinner /* 1215c24b5dfaSDave Chinner * If this is a synchronous mount, make sure that the 1216c24b5dfaSDave Chinner * create transaction goes to disk before returning to 1217c24b5dfaSDave Chinner * the user. 1218c24b5dfaSDave Chinner */ 1219c24b5dfaSDave Chinner if (mp->m_flags & (XFS_MOUNT_WSYNC|XFS_MOUNT_DIRSYNC)) 1220c24b5dfaSDave Chinner xfs_trans_set_sync(tp); 1221c24b5dfaSDave Chinner 1222c24b5dfaSDave Chinner /* 1223c24b5dfaSDave Chinner * Attach the dquot(s) to the inodes and modify them incore. 1224c24b5dfaSDave Chinner * These ids of the inode couldn't have changed since the new 1225c24b5dfaSDave Chinner * inode has been locked ever since it was created. 1226c24b5dfaSDave Chinner */ 1227c24b5dfaSDave Chinner xfs_qm_vop_create_dqattach(tp, ip, udqp, gdqp, pdqp); 1228c24b5dfaSDave Chinner 122970393313SChristoph Hellwig error = xfs_trans_commit(tp); 1230c24b5dfaSDave Chinner if (error) 1231c24b5dfaSDave Chinner goto out_release_inode; 1232c24b5dfaSDave Chinner 1233c24b5dfaSDave Chinner xfs_qm_dqrele(udqp); 1234c24b5dfaSDave Chinner xfs_qm_dqrele(gdqp); 1235c24b5dfaSDave Chinner xfs_qm_dqrele(pdqp); 1236c24b5dfaSDave Chinner 1237c24b5dfaSDave Chinner *ipp = ip; 1238c24b5dfaSDave Chinner return 0; 1239c24b5dfaSDave Chinner 1240c24b5dfaSDave Chinner out_trans_cancel: 12414906e215SChristoph Hellwig xfs_trans_cancel(tp); 1242c24b5dfaSDave Chinner out_release_inode: 1243c24b5dfaSDave Chinner /* 124458c90473SDave Chinner * Wait until after the current transaction is aborted to finish the 124558c90473SDave Chinner * setup of the inode and release the inode. This prevents recursive 124658c90473SDave Chinner * transactions and deadlocks from xfs_inactive. 1247c24b5dfaSDave Chinner */ 124858c90473SDave Chinner if (ip) { 124958c90473SDave Chinner xfs_finish_inode_setup(ip); 125044a8736bSDarrick J. Wong xfs_irele(ip); 125158c90473SDave Chinner } 1252c24b5dfaSDave Chinner 1253c24b5dfaSDave Chinner xfs_qm_dqrele(udqp); 1254c24b5dfaSDave Chinner xfs_qm_dqrele(gdqp); 1255c24b5dfaSDave Chinner xfs_qm_dqrele(pdqp); 1256c24b5dfaSDave Chinner 1257c24b5dfaSDave Chinner if (unlock_dp_on_error) 125865523218SChristoph Hellwig xfs_iunlock(dp, XFS_ILOCK_EXCL); 1259c24b5dfaSDave Chinner return error; 1260c24b5dfaSDave Chinner } 1261c24b5dfaSDave Chinner 1262c24b5dfaSDave Chinner int 126399b6436bSZhi Yong Wu xfs_create_tmpfile( 126499b6436bSZhi Yong Wu struct xfs_inode *dp, 1265330033d6SBrian Foster umode_t mode, 1266330033d6SBrian Foster struct xfs_inode **ipp) 126799b6436bSZhi Yong Wu { 126899b6436bSZhi Yong Wu struct xfs_mount *mp = dp->i_mount; 126999b6436bSZhi Yong Wu struct xfs_inode *ip = NULL; 127099b6436bSZhi Yong Wu struct xfs_trans *tp = NULL; 127199b6436bSZhi Yong Wu int error; 127299b6436bSZhi Yong Wu prid_t prid; 127399b6436bSZhi Yong Wu struct xfs_dquot *udqp = NULL; 127499b6436bSZhi Yong Wu struct xfs_dquot *gdqp = NULL; 127599b6436bSZhi Yong Wu struct xfs_dquot *pdqp = NULL; 127699b6436bSZhi Yong Wu struct xfs_trans_res *tres; 127799b6436bSZhi Yong Wu uint resblks; 127899b6436bSZhi Yong Wu 127999b6436bSZhi Yong Wu if (XFS_FORCED_SHUTDOWN(mp)) 12802451337dSDave Chinner return -EIO; 128199b6436bSZhi Yong Wu 128299b6436bSZhi Yong Wu prid = xfs_get_initial_prid(dp); 128399b6436bSZhi Yong Wu 128499b6436bSZhi Yong Wu /* 128599b6436bSZhi Yong Wu * Make sure that we have allocated dquot(s) on disk. 128699b6436bSZhi Yong Wu */ 128754295159SChristoph Hellwig error = xfs_qm_vop_dqalloc(dp, current_fsuid(), current_fsgid(), prid, 128899b6436bSZhi Yong Wu XFS_QMOPT_QUOTALL | XFS_QMOPT_INHERIT, 128999b6436bSZhi Yong Wu &udqp, &gdqp, &pdqp); 129099b6436bSZhi Yong Wu if (error) 129199b6436bSZhi Yong Wu return error; 129299b6436bSZhi Yong Wu 129399b6436bSZhi Yong Wu resblks = XFS_IALLOC_SPACE_RES(mp); 129499b6436bSZhi Yong Wu tres = &M_RES(mp)->tr_create_tmpfile; 1295253f4911SChristoph Hellwig 1296253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, tres, resblks, 0, 0, &tp); 12974906e215SChristoph Hellwig if (error) 1298253f4911SChristoph Hellwig goto out_release_inode; 129999b6436bSZhi Yong Wu 130099b6436bSZhi Yong Wu error = xfs_trans_reserve_quota(tp, mp, udqp, gdqp, 130199b6436bSZhi Yong Wu pdqp, resblks, 1, 0); 130299b6436bSZhi Yong Wu if (error) 130399b6436bSZhi Yong Wu goto out_trans_cancel; 130499b6436bSZhi Yong Wu 1305c4a6bf7fSDarrick J. Wong error = xfs_dir_ialloc(&tp, dp, mode, 0, 0, prid, &ip); 1306d6077aa3SJan Kara if (error) 130799b6436bSZhi Yong Wu goto out_trans_cancel; 130899b6436bSZhi Yong Wu 130999b6436bSZhi Yong Wu if (mp->m_flags & XFS_MOUNT_WSYNC) 131099b6436bSZhi Yong Wu xfs_trans_set_sync(tp); 131199b6436bSZhi Yong Wu 131299b6436bSZhi Yong Wu /* 131399b6436bSZhi Yong Wu * Attach the dquot(s) to the inodes and modify them incore. 131499b6436bSZhi Yong Wu * These ids of the inode couldn't have changed since the new 131599b6436bSZhi Yong Wu * inode has been locked ever since it was created. 131699b6436bSZhi Yong Wu */ 131799b6436bSZhi Yong Wu xfs_qm_vop_create_dqattach(tp, ip, udqp, gdqp, pdqp); 131899b6436bSZhi Yong Wu 131999b6436bSZhi Yong Wu error = xfs_iunlink(tp, ip); 132099b6436bSZhi Yong Wu if (error) 13214906e215SChristoph Hellwig goto out_trans_cancel; 132299b6436bSZhi Yong Wu 132370393313SChristoph Hellwig error = xfs_trans_commit(tp); 132499b6436bSZhi Yong Wu if (error) 132599b6436bSZhi Yong Wu goto out_release_inode; 132699b6436bSZhi Yong Wu 132799b6436bSZhi Yong Wu xfs_qm_dqrele(udqp); 132899b6436bSZhi Yong Wu xfs_qm_dqrele(gdqp); 132999b6436bSZhi Yong Wu xfs_qm_dqrele(pdqp); 133099b6436bSZhi Yong Wu 1331330033d6SBrian Foster *ipp = ip; 133299b6436bSZhi Yong Wu return 0; 133399b6436bSZhi Yong Wu 133499b6436bSZhi Yong Wu out_trans_cancel: 13354906e215SChristoph Hellwig xfs_trans_cancel(tp); 133699b6436bSZhi Yong Wu out_release_inode: 133799b6436bSZhi Yong Wu /* 133858c90473SDave Chinner * Wait until after the current transaction is aborted to finish the 133958c90473SDave Chinner * setup of the inode and release the inode. This prevents recursive 134058c90473SDave Chinner * transactions and deadlocks from xfs_inactive. 134199b6436bSZhi Yong Wu */ 134258c90473SDave Chinner if (ip) { 134358c90473SDave Chinner xfs_finish_inode_setup(ip); 134444a8736bSDarrick J. Wong xfs_irele(ip); 134558c90473SDave Chinner } 134699b6436bSZhi Yong Wu 134799b6436bSZhi Yong Wu xfs_qm_dqrele(udqp); 134899b6436bSZhi Yong Wu xfs_qm_dqrele(gdqp); 134999b6436bSZhi Yong Wu xfs_qm_dqrele(pdqp); 135099b6436bSZhi Yong Wu 135199b6436bSZhi Yong Wu return error; 135299b6436bSZhi Yong Wu } 135399b6436bSZhi Yong Wu 135499b6436bSZhi Yong Wu int 1355c24b5dfaSDave Chinner xfs_link( 1356c24b5dfaSDave Chinner xfs_inode_t *tdp, 1357c24b5dfaSDave Chinner xfs_inode_t *sip, 1358c24b5dfaSDave Chinner struct xfs_name *target_name) 1359c24b5dfaSDave Chinner { 1360c24b5dfaSDave Chinner xfs_mount_t *mp = tdp->i_mount; 1361c24b5dfaSDave Chinner xfs_trans_t *tp; 1362c24b5dfaSDave Chinner int error; 1363c24b5dfaSDave Chinner int resblks; 1364c24b5dfaSDave Chinner 1365c24b5dfaSDave Chinner trace_xfs_link(tdp, target_name); 1366c24b5dfaSDave Chinner 1367c19b3b05SDave Chinner ASSERT(!S_ISDIR(VFS_I(sip)->i_mode)); 1368c24b5dfaSDave Chinner 1369c24b5dfaSDave Chinner if (XFS_FORCED_SHUTDOWN(mp)) 13702451337dSDave Chinner return -EIO; 1371c24b5dfaSDave Chinner 1372c14cfccaSDarrick J. Wong error = xfs_qm_dqattach(sip); 1373c24b5dfaSDave Chinner if (error) 1374c24b5dfaSDave Chinner goto std_return; 1375c24b5dfaSDave Chinner 1376c14cfccaSDarrick J. Wong error = xfs_qm_dqattach(tdp); 1377c24b5dfaSDave Chinner if (error) 1378c24b5dfaSDave Chinner goto std_return; 1379c24b5dfaSDave Chinner 1380c24b5dfaSDave Chinner resblks = XFS_LINK_SPACE_RES(mp, target_name->len); 1381253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_link, resblks, 0, 0, &tp); 13822451337dSDave Chinner if (error == -ENOSPC) { 1383c24b5dfaSDave Chinner resblks = 0; 1384253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_link, 0, 0, 0, &tp); 1385c24b5dfaSDave Chinner } 13864906e215SChristoph Hellwig if (error) 1387253f4911SChristoph Hellwig goto std_return; 1388c24b5dfaSDave Chinner 13897c2d238aSDarrick J. Wong xfs_lock_two_inodes(sip, XFS_ILOCK_EXCL, tdp, XFS_ILOCK_EXCL); 1390c24b5dfaSDave Chinner 1391c24b5dfaSDave Chinner xfs_trans_ijoin(tp, sip, XFS_ILOCK_EXCL); 139265523218SChristoph Hellwig xfs_trans_ijoin(tp, tdp, XFS_ILOCK_EXCL); 1393c24b5dfaSDave Chinner 1394c24b5dfaSDave Chinner /* 1395c24b5dfaSDave Chinner * If we are using project inheritance, we only allow hard link 1396c24b5dfaSDave Chinner * creation in our tree when the project IDs are the same; else 1397c24b5dfaSDave Chinner * the tree quota mechanism could be circumvented. 1398c24b5dfaSDave Chinner */ 1399c24b5dfaSDave Chinner if (unlikely((tdp->i_d.di_flags & XFS_DIFLAG_PROJINHERIT) && 1400de7a866fSChristoph Hellwig tdp->i_d.di_projid != sip->i_d.di_projid)) { 14012451337dSDave Chinner error = -EXDEV; 1402c24b5dfaSDave Chinner goto error_return; 1403c24b5dfaSDave Chinner } 1404c24b5dfaSDave Chinner 140594f3cad5SEric Sandeen if (!resblks) { 140694f3cad5SEric Sandeen error = xfs_dir_canenter(tp, tdp, target_name); 1407c24b5dfaSDave Chinner if (error) 1408c24b5dfaSDave Chinner goto error_return; 140994f3cad5SEric Sandeen } 1410c24b5dfaSDave Chinner 141154d7b5c1SDave Chinner /* 141254d7b5c1SDave Chinner * Handle initial link state of O_TMPFILE inode 141354d7b5c1SDave Chinner */ 141454d7b5c1SDave Chinner if (VFS_I(sip)->i_nlink == 0) { 1415ab297431SZhi Yong Wu error = xfs_iunlink_remove(tp, sip); 1416ab297431SZhi Yong Wu if (error) 14174906e215SChristoph Hellwig goto error_return; 1418ab297431SZhi Yong Wu } 1419ab297431SZhi Yong Wu 1420c24b5dfaSDave Chinner error = xfs_dir_createname(tp, tdp, target_name, sip->i_ino, 1421381eee69SBrian Foster resblks); 1422c24b5dfaSDave Chinner if (error) 14234906e215SChristoph Hellwig goto error_return; 1424c24b5dfaSDave Chinner xfs_trans_ichgtime(tp, tdp, XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG); 1425c24b5dfaSDave Chinner xfs_trans_log_inode(tp, tdp, XFS_ILOG_CORE); 1426c24b5dfaSDave Chinner 142791083269SEric Sandeen xfs_bumplink(tp, sip); 1428c24b5dfaSDave Chinner 1429c24b5dfaSDave Chinner /* 1430c24b5dfaSDave Chinner * If this is a synchronous mount, make sure that the 1431c24b5dfaSDave Chinner * link transaction goes to disk before returning to 1432c24b5dfaSDave Chinner * the user. 1433c24b5dfaSDave Chinner */ 1434f6106efaSEric Sandeen if (mp->m_flags & (XFS_MOUNT_WSYNC|XFS_MOUNT_DIRSYNC)) 1435c24b5dfaSDave Chinner xfs_trans_set_sync(tp); 1436c24b5dfaSDave Chinner 143770393313SChristoph Hellwig return xfs_trans_commit(tp); 1438c24b5dfaSDave Chinner 1439c24b5dfaSDave Chinner error_return: 14404906e215SChristoph Hellwig xfs_trans_cancel(tp); 1441c24b5dfaSDave Chinner std_return: 1442c24b5dfaSDave Chinner return error; 1443c24b5dfaSDave Chinner } 1444c24b5dfaSDave Chinner 1445363e59baSDarrick J. Wong /* Clear the reflink flag and the cowblocks tag if possible. */ 1446363e59baSDarrick J. Wong static void 1447363e59baSDarrick J. Wong xfs_itruncate_clear_reflink_flags( 1448363e59baSDarrick J. Wong struct xfs_inode *ip) 1449363e59baSDarrick J. Wong { 1450363e59baSDarrick J. Wong struct xfs_ifork *dfork; 1451363e59baSDarrick J. Wong struct xfs_ifork *cfork; 1452363e59baSDarrick J. Wong 1453363e59baSDarrick J. Wong if (!xfs_is_reflink_inode(ip)) 1454363e59baSDarrick J. Wong return; 1455363e59baSDarrick J. Wong dfork = XFS_IFORK_PTR(ip, XFS_DATA_FORK); 1456363e59baSDarrick J. Wong cfork = XFS_IFORK_PTR(ip, XFS_COW_FORK); 1457363e59baSDarrick J. Wong if (dfork->if_bytes == 0 && cfork->if_bytes == 0) 1458363e59baSDarrick J. Wong ip->i_d.di_flags2 &= ~XFS_DIFLAG2_REFLINK; 1459363e59baSDarrick J. Wong if (cfork->if_bytes == 0) 1460363e59baSDarrick J. Wong xfs_inode_clear_cowblocks_tag(ip); 1461363e59baSDarrick J. Wong } 1462363e59baSDarrick J. Wong 14631da177e4SLinus Torvalds /* 14648f04c47aSChristoph Hellwig * Free up the underlying blocks past new_size. The new size must be smaller 14658f04c47aSChristoph Hellwig * than the current size. This routine can be used both for the attribute and 14668f04c47aSChristoph Hellwig * data fork, and does not modify the inode size, which is left to the caller. 14671da177e4SLinus Torvalds * 1468f6485057SDavid Chinner * The transaction passed to this routine must have made a permanent log 1469f6485057SDavid Chinner * reservation of at least XFS_ITRUNCATE_LOG_RES. This routine may commit the 1470f6485057SDavid Chinner * given transaction and start new ones, so make sure everything involved in 1471f6485057SDavid Chinner * the transaction is tidy before calling here. Some transaction will be 1472f6485057SDavid Chinner * returned to the caller to be committed. The incoming transaction must 1473f6485057SDavid Chinner * already include the inode, and both inode locks must be held exclusively. 1474f6485057SDavid Chinner * The inode must also be "held" within the transaction. On return the inode 1475f6485057SDavid Chinner * will be "held" within the returned transaction. This routine does NOT 1476f6485057SDavid Chinner * require any disk space to be reserved for it within the transaction. 14771da177e4SLinus Torvalds * 1478f6485057SDavid Chinner * If we get an error, we must return with the inode locked and linked into the 1479f6485057SDavid Chinner * current transaction. This keeps things simple for the higher level code, 1480f6485057SDavid Chinner * because it always knows that the inode is locked and held in the transaction 1481f6485057SDavid Chinner * that returns to it whether errors occur or not. We don't mark the inode 1482f6485057SDavid Chinner * dirty on error so that transactions can be easily aborted if possible. 14831da177e4SLinus Torvalds */ 14841da177e4SLinus Torvalds int 14854e529339SBrian Foster xfs_itruncate_extents_flags( 14868f04c47aSChristoph Hellwig struct xfs_trans **tpp, 14878f04c47aSChristoph Hellwig struct xfs_inode *ip, 14888f04c47aSChristoph Hellwig int whichfork, 148913b86fc3SBrian Foster xfs_fsize_t new_size, 14904e529339SBrian Foster int flags) 14911da177e4SLinus Torvalds { 14928f04c47aSChristoph Hellwig struct xfs_mount *mp = ip->i_mount; 14938f04c47aSChristoph Hellwig struct xfs_trans *tp = *tpp; 14941da177e4SLinus Torvalds xfs_fileoff_t first_unmap_block; 14958f04c47aSChristoph Hellwig xfs_filblks_t unmap_len; 14968f04c47aSChristoph Hellwig int error = 0; 14971da177e4SLinus Torvalds 14980b56185bSChristoph Hellwig ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL)); 14990b56185bSChristoph Hellwig ASSERT(!atomic_read(&VFS_I(ip)->i_count) || 15000b56185bSChristoph Hellwig xfs_isilocked(ip, XFS_IOLOCK_EXCL)); 1501ce7ae151SChristoph Hellwig ASSERT(new_size <= XFS_ISIZE(ip)); 15028f04c47aSChristoph Hellwig ASSERT(tp->t_flags & XFS_TRANS_PERM_LOG_RES); 15031da177e4SLinus Torvalds ASSERT(ip->i_itemp != NULL); 1504898621d5SChristoph Hellwig ASSERT(ip->i_itemp->ili_lock_flags == 0); 15051da177e4SLinus Torvalds ASSERT(!XFS_NOT_DQATTACHED(mp, ip)); 15061da177e4SLinus Torvalds 1507673e8e59SChristoph Hellwig trace_xfs_itruncate_extents_start(ip, new_size); 1508673e8e59SChristoph Hellwig 15094e529339SBrian Foster flags |= xfs_bmapi_aflag(whichfork); 151013b86fc3SBrian Foster 15111da177e4SLinus Torvalds /* 15121da177e4SLinus Torvalds * Since it is possible for space to become allocated beyond 15131da177e4SLinus Torvalds * the end of the file (in a crash where the space is allocated 15141da177e4SLinus Torvalds * but the inode size is not yet updated), simply remove any 15151da177e4SLinus Torvalds * blocks which show up between the new EOF and the maximum 15164bbb04abSDarrick J. Wong * possible file size. 15174bbb04abSDarrick J. Wong * 15184bbb04abSDarrick J. Wong * We have to free all the blocks to the bmbt maximum offset, even if 15194bbb04abSDarrick J. Wong * the page cache can't scale that far. 15201da177e4SLinus Torvalds */ 15218f04c47aSChristoph Hellwig first_unmap_block = XFS_B_TO_FSB(mp, (xfs_ufsize_t)new_size); 15224bbb04abSDarrick J. Wong if (first_unmap_block >= XFS_MAX_FILEOFF) { 15234bbb04abSDarrick J. Wong WARN_ON_ONCE(first_unmap_block > XFS_MAX_FILEOFF); 15248f04c47aSChristoph Hellwig return 0; 15254bbb04abSDarrick J. Wong } 15268f04c47aSChristoph Hellwig 15274bbb04abSDarrick J. Wong unmap_len = XFS_MAX_FILEOFF - first_unmap_block + 1; 15284bbb04abSDarrick J. Wong while (unmap_len > 0) { 152902dff7bfSBrian Foster ASSERT(tp->t_firstblock == NULLFSBLOCK); 15304bbb04abSDarrick J. Wong error = __xfs_bunmapi(tp, ip, first_unmap_block, &unmap_len, 15314bbb04abSDarrick J. Wong flags, XFS_ITRUNC_MAX_EXTENTS); 15328f04c47aSChristoph Hellwig if (error) 1533d5a2e289SBrian Foster goto out; 15341da177e4SLinus Torvalds 15351da177e4SLinus Torvalds /* 15361da177e4SLinus Torvalds * Duplicate the transaction that has the permanent 15371da177e4SLinus Torvalds * reservation and commit the old transaction. 15381da177e4SLinus Torvalds */ 15399e28a242SBrian Foster error = xfs_defer_finish(&tp); 15408f04c47aSChristoph Hellwig if (error) 15419b1f4e98SBrian Foster goto out; 15421da177e4SLinus Torvalds 1543411350dfSChristoph Hellwig error = xfs_trans_roll_inode(&tp, ip); 15441da177e4SLinus Torvalds if (error) 15458f04c47aSChristoph Hellwig goto out; 15461da177e4SLinus Torvalds } 15478f04c47aSChristoph Hellwig 15484919d42aSDarrick J. Wong if (whichfork == XFS_DATA_FORK) { 1549aa8968f2SDarrick J. Wong /* Remove all pending CoW reservations. */ 15504919d42aSDarrick J. Wong error = xfs_reflink_cancel_cow_blocks(ip, &tp, 15514bbb04abSDarrick J. Wong first_unmap_block, XFS_MAX_FILEOFF, true); 1552aa8968f2SDarrick J. Wong if (error) 1553aa8968f2SDarrick J. Wong goto out; 1554aa8968f2SDarrick J. Wong 1555363e59baSDarrick J. Wong xfs_itruncate_clear_reflink_flags(ip); 15564919d42aSDarrick J. Wong } 1557aa8968f2SDarrick J. Wong 1558673e8e59SChristoph Hellwig /* 1559673e8e59SChristoph Hellwig * Always re-log the inode so that our permanent transaction can keep 1560673e8e59SChristoph Hellwig * on rolling it forward in the log. 1561673e8e59SChristoph Hellwig */ 1562673e8e59SChristoph Hellwig xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE); 1563673e8e59SChristoph Hellwig 1564673e8e59SChristoph Hellwig trace_xfs_itruncate_extents_end(ip, new_size); 1565673e8e59SChristoph Hellwig 15668f04c47aSChristoph Hellwig out: 15678f04c47aSChristoph Hellwig *tpp = tp; 15688f04c47aSChristoph Hellwig return error; 15698f04c47aSChristoph Hellwig } 15708f04c47aSChristoph Hellwig 1571c24b5dfaSDave Chinner int 1572c24b5dfaSDave Chinner xfs_release( 1573c24b5dfaSDave Chinner xfs_inode_t *ip) 1574c24b5dfaSDave Chinner { 1575c24b5dfaSDave Chinner xfs_mount_t *mp = ip->i_mount; 1576c24b5dfaSDave Chinner int error; 1577c24b5dfaSDave Chinner 1578c19b3b05SDave Chinner if (!S_ISREG(VFS_I(ip)->i_mode) || (VFS_I(ip)->i_mode == 0)) 1579c24b5dfaSDave Chinner return 0; 1580c24b5dfaSDave Chinner 1581c24b5dfaSDave Chinner /* If this is a read-only mount, don't do this (would generate I/O) */ 1582c24b5dfaSDave Chinner if (mp->m_flags & XFS_MOUNT_RDONLY) 1583c24b5dfaSDave Chinner return 0; 1584c24b5dfaSDave Chinner 1585c24b5dfaSDave Chinner if (!XFS_FORCED_SHUTDOWN(mp)) { 1586c24b5dfaSDave Chinner int truncated; 1587c24b5dfaSDave Chinner 1588c24b5dfaSDave Chinner /* 1589c24b5dfaSDave Chinner * If we previously truncated this file and removed old data 1590c24b5dfaSDave Chinner * in the process, we want to initiate "early" writeout on 1591c24b5dfaSDave Chinner * the last close. This is an attempt to combat the notorious 1592c24b5dfaSDave Chinner * NULL files problem which is particularly noticeable from a 1593c24b5dfaSDave Chinner * truncate down, buffered (re-)write (delalloc), followed by 1594c24b5dfaSDave Chinner * a crash. What we are effectively doing here is 1595c24b5dfaSDave Chinner * significantly reducing the time window where we'd otherwise 1596c24b5dfaSDave Chinner * be exposed to that problem. 1597c24b5dfaSDave Chinner */ 1598c24b5dfaSDave Chinner truncated = xfs_iflags_test_and_clear(ip, XFS_ITRUNCATED); 1599c24b5dfaSDave Chinner if (truncated) { 1600c24b5dfaSDave Chinner xfs_iflags_clear(ip, XFS_IDIRTY_RELEASE); 1601eac152b4SDave Chinner if (ip->i_delayed_blks > 0) { 16022451337dSDave Chinner error = filemap_flush(VFS_I(ip)->i_mapping); 1603c24b5dfaSDave Chinner if (error) 1604c24b5dfaSDave Chinner return error; 1605c24b5dfaSDave Chinner } 1606c24b5dfaSDave Chinner } 1607c24b5dfaSDave Chinner } 1608c24b5dfaSDave Chinner 160954d7b5c1SDave Chinner if (VFS_I(ip)->i_nlink == 0) 1610c24b5dfaSDave Chinner return 0; 1611c24b5dfaSDave Chinner 1612c24b5dfaSDave Chinner if (xfs_can_free_eofblocks(ip, false)) { 1613c24b5dfaSDave Chinner 1614c24b5dfaSDave Chinner /* 1615a36b9261SBrian Foster * Check if the inode is being opened, written and closed 1616a36b9261SBrian Foster * frequently and we have delayed allocation blocks outstanding 1617a36b9261SBrian Foster * (e.g. streaming writes from the NFS server), truncating the 1618a36b9261SBrian Foster * blocks past EOF will cause fragmentation to occur. 1619a36b9261SBrian Foster * 1620a36b9261SBrian Foster * In this case don't do the truncation, but we have to be 1621a36b9261SBrian Foster * careful how we detect this case. Blocks beyond EOF show up as 1622a36b9261SBrian Foster * i_delayed_blks even when the inode is clean, so we need to 1623a36b9261SBrian Foster * truncate them away first before checking for a dirty release. 1624a36b9261SBrian Foster * Hence on the first dirty close we will still remove the 1625a36b9261SBrian Foster * speculative allocation, but after that we will leave it in 1626a36b9261SBrian Foster * place. 1627a36b9261SBrian Foster */ 1628a36b9261SBrian Foster if (xfs_iflags_test(ip, XFS_IDIRTY_RELEASE)) 1629a36b9261SBrian Foster return 0; 1630a36b9261SBrian Foster /* 1631c24b5dfaSDave Chinner * If we can't get the iolock just skip truncating the blocks 1632c1e8d7c6SMichel Lespinasse * past EOF because we could deadlock with the mmap_lock 1633c24b5dfaSDave Chinner * otherwise. We'll get another chance to drop them once the 1634c24b5dfaSDave Chinner * last reference to the inode is dropped, so we'll never leak 1635c24b5dfaSDave Chinner * blocks permanently. 1636c24b5dfaSDave Chinner */ 1637a36b9261SBrian Foster if (xfs_ilock_nowait(ip, XFS_IOLOCK_EXCL)) { 1638a36b9261SBrian Foster error = xfs_free_eofblocks(ip); 1639a36b9261SBrian Foster xfs_iunlock(ip, XFS_IOLOCK_EXCL); 1640a36b9261SBrian Foster if (error) 1641c24b5dfaSDave Chinner return error; 1642a36b9261SBrian Foster } 1643c24b5dfaSDave Chinner 1644c24b5dfaSDave Chinner /* delalloc blocks after truncation means it really is dirty */ 1645c24b5dfaSDave Chinner if (ip->i_delayed_blks) 1646c24b5dfaSDave Chinner xfs_iflags_set(ip, XFS_IDIRTY_RELEASE); 1647c24b5dfaSDave Chinner } 1648c24b5dfaSDave Chinner return 0; 1649c24b5dfaSDave Chinner } 1650c24b5dfaSDave Chinner 1651c24b5dfaSDave Chinner /* 1652f7be2d7fSBrian Foster * xfs_inactive_truncate 1653f7be2d7fSBrian Foster * 1654f7be2d7fSBrian Foster * Called to perform a truncate when an inode becomes unlinked. 1655f7be2d7fSBrian Foster */ 1656f7be2d7fSBrian Foster STATIC int 1657f7be2d7fSBrian Foster xfs_inactive_truncate( 1658f7be2d7fSBrian Foster struct xfs_inode *ip) 1659f7be2d7fSBrian Foster { 1660f7be2d7fSBrian Foster struct xfs_mount *mp = ip->i_mount; 1661f7be2d7fSBrian Foster struct xfs_trans *tp; 1662f7be2d7fSBrian Foster int error; 1663f7be2d7fSBrian Foster 1664253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_itruncate, 0, 0, 0, &tp); 1665f7be2d7fSBrian Foster if (error) { 1666f7be2d7fSBrian Foster ASSERT(XFS_FORCED_SHUTDOWN(mp)); 1667f7be2d7fSBrian Foster return error; 1668f7be2d7fSBrian Foster } 1669f7be2d7fSBrian Foster xfs_ilock(ip, XFS_ILOCK_EXCL); 1670f7be2d7fSBrian Foster xfs_trans_ijoin(tp, ip, 0); 1671f7be2d7fSBrian Foster 1672f7be2d7fSBrian Foster /* 1673f7be2d7fSBrian Foster * Log the inode size first to prevent stale data exposure in the event 1674f7be2d7fSBrian Foster * of a system crash before the truncate completes. See the related 167569bca807SJan Kara * comment in xfs_vn_setattr_size() for details. 1676f7be2d7fSBrian Foster */ 1677f7be2d7fSBrian Foster ip->i_d.di_size = 0; 1678f7be2d7fSBrian Foster xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE); 1679f7be2d7fSBrian Foster 1680f7be2d7fSBrian Foster error = xfs_itruncate_extents(&tp, ip, XFS_DATA_FORK, 0); 1681f7be2d7fSBrian Foster if (error) 1682f7be2d7fSBrian Foster goto error_trans_cancel; 1683f7be2d7fSBrian Foster 1684daf83964SChristoph Hellwig ASSERT(ip->i_df.if_nextents == 0); 1685f7be2d7fSBrian Foster 168670393313SChristoph Hellwig error = xfs_trans_commit(tp); 1687f7be2d7fSBrian Foster if (error) 1688f7be2d7fSBrian Foster goto error_unlock; 1689f7be2d7fSBrian Foster 1690f7be2d7fSBrian Foster xfs_iunlock(ip, XFS_ILOCK_EXCL); 1691f7be2d7fSBrian Foster return 0; 1692f7be2d7fSBrian Foster 1693f7be2d7fSBrian Foster error_trans_cancel: 16944906e215SChristoph Hellwig xfs_trans_cancel(tp); 1695f7be2d7fSBrian Foster error_unlock: 1696f7be2d7fSBrian Foster xfs_iunlock(ip, XFS_ILOCK_EXCL); 1697f7be2d7fSBrian Foster return error; 1698f7be2d7fSBrian Foster } 1699f7be2d7fSBrian Foster 1700f7be2d7fSBrian Foster /* 170188877d2bSBrian Foster * xfs_inactive_ifree() 170288877d2bSBrian Foster * 170388877d2bSBrian Foster * Perform the inode free when an inode is unlinked. 170488877d2bSBrian Foster */ 170588877d2bSBrian Foster STATIC int 170688877d2bSBrian Foster xfs_inactive_ifree( 170788877d2bSBrian Foster struct xfs_inode *ip) 170888877d2bSBrian Foster { 170988877d2bSBrian Foster struct xfs_mount *mp = ip->i_mount; 171088877d2bSBrian Foster struct xfs_trans *tp; 171188877d2bSBrian Foster int error; 171288877d2bSBrian Foster 17139d43b180SBrian Foster /* 171476d771b4SChristoph Hellwig * We try to use a per-AG reservation for any block needed by the finobt 171576d771b4SChristoph Hellwig * tree, but as the finobt feature predates the per-AG reservation 171676d771b4SChristoph Hellwig * support a degraded file system might not have enough space for the 171776d771b4SChristoph Hellwig * reservation at mount time. In that case try to dip into the reserved 171876d771b4SChristoph Hellwig * pool and pray. 17199d43b180SBrian Foster * 17209d43b180SBrian Foster * Send a warning if the reservation does happen to fail, as the inode 17219d43b180SBrian Foster * now remains allocated and sits on the unlinked list until the fs is 17229d43b180SBrian Foster * repaired. 17239d43b180SBrian Foster */ 1724e1f6ca11SDarrick J. Wong if (unlikely(mp->m_finobt_nores)) { 1725253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_ifree, 172676d771b4SChristoph Hellwig XFS_IFREE_SPACE_RES(mp), 0, XFS_TRANS_RESERVE, 172776d771b4SChristoph Hellwig &tp); 172876d771b4SChristoph Hellwig } else { 172976d771b4SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_ifree, 0, 0, 0, &tp); 173076d771b4SChristoph Hellwig } 173188877d2bSBrian Foster if (error) { 17322451337dSDave Chinner if (error == -ENOSPC) { 17339d43b180SBrian Foster xfs_warn_ratelimited(mp, 17349d43b180SBrian Foster "Failed to remove inode(s) from unlinked list. " 17359d43b180SBrian Foster "Please free space, unmount and run xfs_repair."); 17369d43b180SBrian Foster } else { 173788877d2bSBrian Foster ASSERT(XFS_FORCED_SHUTDOWN(mp)); 17389d43b180SBrian Foster } 173988877d2bSBrian Foster return error; 174088877d2bSBrian Foster } 174188877d2bSBrian Foster 174296355d5aSDave Chinner /* 174396355d5aSDave Chinner * We do not hold the inode locked across the entire rolling transaction 174496355d5aSDave Chinner * here. We only need to hold it for the first transaction that 174596355d5aSDave Chinner * xfs_ifree() builds, which may mark the inode XFS_ISTALE if the 174696355d5aSDave Chinner * underlying cluster buffer is freed. Relogging an XFS_ISTALE inode 174796355d5aSDave Chinner * here breaks the relationship between cluster buffer invalidation and 174896355d5aSDave Chinner * stale inode invalidation on cluster buffer item journal commit 174996355d5aSDave Chinner * completion, and can result in leaving dirty stale inodes hanging 175096355d5aSDave Chinner * around in memory. 175196355d5aSDave Chinner * 175296355d5aSDave Chinner * We have no need for serialising this inode operation against other 175396355d5aSDave Chinner * operations - we freed the inode and hence reallocation is required 175496355d5aSDave Chinner * and that will serialise on reallocating the space the deferops need 175596355d5aSDave Chinner * to free. Hence we can unlock the inode on the first commit of 175696355d5aSDave Chinner * the transaction rather than roll it right through the deferops. This 175796355d5aSDave Chinner * avoids relogging the XFS_ISTALE inode. 175896355d5aSDave Chinner * 175996355d5aSDave Chinner * We check that xfs_ifree() hasn't grown an internal transaction roll 176096355d5aSDave Chinner * by asserting that the inode is still locked when it returns. 176196355d5aSDave Chinner */ 176288877d2bSBrian Foster xfs_ilock(ip, XFS_ILOCK_EXCL); 176396355d5aSDave Chinner xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL); 176488877d2bSBrian Foster 17650e0417f3SBrian Foster error = xfs_ifree(tp, ip); 176696355d5aSDave Chinner ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL)); 176788877d2bSBrian Foster if (error) { 176888877d2bSBrian Foster /* 176988877d2bSBrian Foster * If we fail to free the inode, shut down. The cancel 177088877d2bSBrian Foster * might do that, we need to make sure. Otherwise the 177188877d2bSBrian Foster * inode might be lost for a long time or forever. 177288877d2bSBrian Foster */ 177388877d2bSBrian Foster if (!XFS_FORCED_SHUTDOWN(mp)) { 177488877d2bSBrian Foster xfs_notice(mp, "%s: xfs_ifree returned error %d", 177588877d2bSBrian Foster __func__, error); 177688877d2bSBrian Foster xfs_force_shutdown(mp, SHUTDOWN_META_IO_ERROR); 177788877d2bSBrian Foster } 17784906e215SChristoph Hellwig xfs_trans_cancel(tp); 177988877d2bSBrian Foster return error; 178088877d2bSBrian Foster } 178188877d2bSBrian Foster 178288877d2bSBrian Foster /* 178388877d2bSBrian Foster * Credit the quota account(s). The inode is gone. 178488877d2bSBrian Foster */ 178588877d2bSBrian Foster xfs_trans_mod_dquot_byino(tp, ip, XFS_TRANS_DQ_ICOUNT, -1); 178688877d2bSBrian Foster 178788877d2bSBrian Foster /* 1788d4a97a04SBrian Foster * Just ignore errors at this point. There is nothing we can do except 1789d4a97a04SBrian Foster * to try to keep going. Make sure it's not a silent error. 179088877d2bSBrian Foster */ 179170393313SChristoph Hellwig error = xfs_trans_commit(tp); 179288877d2bSBrian Foster if (error) 179388877d2bSBrian Foster xfs_notice(mp, "%s: xfs_trans_commit returned error %d", 179488877d2bSBrian Foster __func__, error); 179588877d2bSBrian Foster 179688877d2bSBrian Foster return 0; 179788877d2bSBrian Foster } 179888877d2bSBrian Foster 179988877d2bSBrian Foster /* 1800c24b5dfaSDave Chinner * xfs_inactive 1801c24b5dfaSDave Chinner * 1802c24b5dfaSDave Chinner * This is called when the vnode reference count for the vnode 1803c24b5dfaSDave Chinner * goes to zero. If the file has been unlinked, then it must 1804c24b5dfaSDave Chinner * now be truncated. Also, we clear all of the read-ahead state 1805c24b5dfaSDave Chinner * kept for the inode here since the file is now closed. 1806c24b5dfaSDave Chinner */ 180774564fb4SBrian Foster void 1808c24b5dfaSDave Chinner xfs_inactive( 1809c24b5dfaSDave Chinner xfs_inode_t *ip) 1810c24b5dfaSDave Chinner { 18113d3c8b52SJie Liu struct xfs_mount *mp; 1812c24b5dfaSDave Chinner int error; 1813c24b5dfaSDave Chinner int truncate = 0; 1814c24b5dfaSDave Chinner 1815c24b5dfaSDave Chinner /* 1816c24b5dfaSDave Chinner * If the inode is already free, then there can be nothing 1817c24b5dfaSDave Chinner * to clean up here. 1818c24b5dfaSDave Chinner */ 1819c19b3b05SDave Chinner if (VFS_I(ip)->i_mode == 0) { 1820c24b5dfaSDave Chinner ASSERT(ip->i_df.if_broot_bytes == 0); 182174564fb4SBrian Foster return; 1822c24b5dfaSDave Chinner } 1823c24b5dfaSDave Chinner 1824c24b5dfaSDave Chinner mp = ip->i_mount; 182517c12bcdSDarrick J. Wong ASSERT(!xfs_iflags_test(ip, XFS_IRECOVERY)); 1826c24b5dfaSDave Chinner 1827c24b5dfaSDave Chinner /* If this is a read-only mount, don't do this (would generate I/O) */ 1828c24b5dfaSDave Chinner if (mp->m_flags & XFS_MOUNT_RDONLY) 182974564fb4SBrian Foster return; 1830c24b5dfaSDave Chinner 18316231848cSDarrick J. Wong /* Try to clean out the cow blocks if there are any. */ 183251d62690SChristoph Hellwig if (xfs_inode_has_cow_data(ip)) 18336231848cSDarrick J. Wong xfs_reflink_cancel_cow_range(ip, 0, NULLFILEOFF, true); 18346231848cSDarrick J. Wong 183554d7b5c1SDave Chinner if (VFS_I(ip)->i_nlink != 0) { 1836c24b5dfaSDave Chinner /* 1837c24b5dfaSDave Chinner * force is true because we are evicting an inode from the 1838c24b5dfaSDave Chinner * cache. Post-eof blocks must be freed, lest we end up with 1839c24b5dfaSDave Chinner * broken free space accounting. 18403b4683c2SBrian Foster * 18413b4683c2SBrian Foster * Note: don't bother with iolock here since lockdep complains 18423b4683c2SBrian Foster * about acquiring it in reclaim context. We have the only 18433b4683c2SBrian Foster * reference to the inode at this point anyways. 1844c24b5dfaSDave Chinner */ 18453b4683c2SBrian Foster if (xfs_can_free_eofblocks(ip, true)) 1846a36b9261SBrian Foster xfs_free_eofblocks(ip); 184774564fb4SBrian Foster 184874564fb4SBrian Foster return; 1849c24b5dfaSDave Chinner } 1850c24b5dfaSDave Chinner 1851c19b3b05SDave Chinner if (S_ISREG(VFS_I(ip)->i_mode) && 1852c24b5dfaSDave Chinner (ip->i_d.di_size != 0 || XFS_ISIZE(ip) != 0 || 1853daf83964SChristoph Hellwig ip->i_df.if_nextents > 0 || ip->i_delayed_blks > 0)) 1854c24b5dfaSDave Chinner truncate = 1; 1855c24b5dfaSDave Chinner 1856c14cfccaSDarrick J. Wong error = xfs_qm_dqattach(ip); 1857c24b5dfaSDave Chinner if (error) 185874564fb4SBrian Foster return; 1859c24b5dfaSDave Chinner 1860c19b3b05SDave Chinner if (S_ISLNK(VFS_I(ip)->i_mode)) 186136b21ddeSBrian Foster error = xfs_inactive_symlink(ip); 1862f7be2d7fSBrian Foster else if (truncate) 1863f7be2d7fSBrian Foster error = xfs_inactive_truncate(ip); 186436b21ddeSBrian Foster if (error) 186574564fb4SBrian Foster return; 1866c24b5dfaSDave Chinner 1867c24b5dfaSDave Chinner /* 1868c24b5dfaSDave Chinner * If there are attributes associated with the file then blow them away 1869c24b5dfaSDave Chinner * now. The code calls a routine that recursively deconstructs the 18706dfe5a04SDave Chinner * attribute fork. If also blows away the in-core attribute fork. 1871c24b5dfaSDave Chinner */ 18726dfe5a04SDave Chinner if (XFS_IFORK_Q(ip)) { 1873c24b5dfaSDave Chinner error = xfs_attr_inactive(ip); 1874c24b5dfaSDave Chinner if (error) 187574564fb4SBrian Foster return; 1876c24b5dfaSDave Chinner } 1877c24b5dfaSDave Chinner 18786dfe5a04SDave Chinner ASSERT(!ip->i_afp); 18796dfe5a04SDave Chinner ASSERT(ip->i_d.di_forkoff == 0); 1880c24b5dfaSDave Chinner 1881c24b5dfaSDave Chinner /* 1882c24b5dfaSDave Chinner * Free the inode. 1883c24b5dfaSDave Chinner */ 188488877d2bSBrian Foster error = xfs_inactive_ifree(ip); 1885c24b5dfaSDave Chinner if (error) 188674564fb4SBrian Foster return; 1887c24b5dfaSDave Chinner 1888c24b5dfaSDave Chinner /* 1889c24b5dfaSDave Chinner * Release the dquots held by inode, if any. 1890c24b5dfaSDave Chinner */ 1891c24b5dfaSDave Chinner xfs_qm_dqdetach(ip); 1892c24b5dfaSDave Chinner } 1893c24b5dfaSDave Chinner 18941da177e4SLinus Torvalds /* 18959b247179SDarrick J. Wong * In-Core Unlinked List Lookups 18969b247179SDarrick J. Wong * ============================= 18979b247179SDarrick J. Wong * 18989b247179SDarrick J. Wong * Every inode is supposed to be reachable from some other piece of metadata 18999b247179SDarrick J. Wong * with the exception of the root directory. Inodes with a connection to a 19009b247179SDarrick J. Wong * file descriptor but not linked from anywhere in the on-disk directory tree 19019b247179SDarrick J. Wong * are collectively known as unlinked inodes, though the filesystem itself 19029b247179SDarrick J. Wong * maintains links to these inodes so that on-disk metadata are consistent. 19039b247179SDarrick J. Wong * 19049b247179SDarrick J. Wong * XFS implements a per-AG on-disk hash table of unlinked inodes. The AGI 19059b247179SDarrick J. Wong * header contains a number of buckets that point to an inode, and each inode 19069b247179SDarrick J. Wong * record has a pointer to the next inode in the hash chain. This 19079b247179SDarrick J. Wong * singly-linked list causes scaling problems in the iunlink remove function 19089b247179SDarrick J. Wong * because we must walk that list to find the inode that points to the inode 19099b247179SDarrick J. Wong * being removed from the unlinked hash bucket list. 19109b247179SDarrick J. Wong * 19119b247179SDarrick J. Wong * What if we modelled the unlinked list as a collection of records capturing 19129b247179SDarrick J. Wong * "X.next_unlinked = Y" relations? If we indexed those records on Y, we'd 19139b247179SDarrick J. Wong * have a fast way to look up unlinked list predecessors, which avoids the 19149b247179SDarrick J. Wong * slow list walk. That's exactly what we do here (in-core) with a per-AG 19159b247179SDarrick J. Wong * rhashtable. 19169b247179SDarrick J. Wong * 19179b247179SDarrick J. Wong * Because this is a backref cache, we ignore operational failures since the 19189b247179SDarrick J. Wong * iunlink code can fall back to the slow bucket walk. The only errors that 19199b247179SDarrick J. Wong * should bubble out are for obviously incorrect situations. 19209b247179SDarrick J. Wong * 19219b247179SDarrick J. Wong * All users of the backref cache MUST hold the AGI buffer lock to serialize 19229b247179SDarrick J. Wong * access or have otherwise provided for concurrency control. 19239b247179SDarrick J. Wong */ 19249b247179SDarrick J. Wong 19259b247179SDarrick J. Wong /* Capture a "X.next_unlinked = Y" relationship. */ 19269b247179SDarrick J. Wong struct xfs_iunlink { 19279b247179SDarrick J. Wong struct rhash_head iu_rhash_head; 19289b247179SDarrick J. Wong xfs_agino_t iu_agino; /* X */ 19299b247179SDarrick J. Wong xfs_agino_t iu_next_unlinked; /* Y */ 19309b247179SDarrick J. Wong }; 19319b247179SDarrick J. Wong 19329b247179SDarrick J. Wong /* Unlinked list predecessor lookup hashtable construction */ 19339b247179SDarrick J. Wong static int 19349b247179SDarrick J. Wong xfs_iunlink_obj_cmpfn( 19359b247179SDarrick J. Wong struct rhashtable_compare_arg *arg, 19369b247179SDarrick J. Wong const void *obj) 19379b247179SDarrick J. Wong { 19389b247179SDarrick J. Wong const xfs_agino_t *key = arg->key; 19399b247179SDarrick J. Wong const struct xfs_iunlink *iu = obj; 19409b247179SDarrick J. Wong 19419b247179SDarrick J. Wong if (iu->iu_next_unlinked != *key) 19429b247179SDarrick J. Wong return 1; 19439b247179SDarrick J. Wong return 0; 19449b247179SDarrick J. Wong } 19459b247179SDarrick J. Wong 19469b247179SDarrick J. Wong static const struct rhashtable_params xfs_iunlink_hash_params = { 19479b247179SDarrick J. Wong .min_size = XFS_AGI_UNLINKED_BUCKETS, 19489b247179SDarrick J. Wong .key_len = sizeof(xfs_agino_t), 19499b247179SDarrick J. Wong .key_offset = offsetof(struct xfs_iunlink, 19509b247179SDarrick J. Wong iu_next_unlinked), 19519b247179SDarrick J. Wong .head_offset = offsetof(struct xfs_iunlink, iu_rhash_head), 19529b247179SDarrick J. Wong .automatic_shrinking = true, 19539b247179SDarrick J. Wong .obj_cmpfn = xfs_iunlink_obj_cmpfn, 19549b247179SDarrick J. Wong }; 19559b247179SDarrick J. Wong 19569b247179SDarrick J. Wong /* 19579b247179SDarrick J. Wong * Return X, where X.next_unlinked == @agino. Returns NULLAGINO if no such 19589b247179SDarrick J. Wong * relation is found. 19599b247179SDarrick J. Wong */ 19609b247179SDarrick J. Wong static xfs_agino_t 19619b247179SDarrick J. Wong xfs_iunlink_lookup_backref( 19629b247179SDarrick J. Wong struct xfs_perag *pag, 19639b247179SDarrick J. Wong xfs_agino_t agino) 19649b247179SDarrick J. Wong { 19659b247179SDarrick J. Wong struct xfs_iunlink *iu; 19669b247179SDarrick J. Wong 19679b247179SDarrick J. Wong iu = rhashtable_lookup_fast(&pag->pagi_unlinked_hash, &agino, 19689b247179SDarrick J. Wong xfs_iunlink_hash_params); 19699b247179SDarrick J. Wong return iu ? iu->iu_agino : NULLAGINO; 19709b247179SDarrick J. Wong } 19719b247179SDarrick J. Wong 19729b247179SDarrick J. Wong /* 19739b247179SDarrick J. Wong * Take ownership of an iunlink cache entry and insert it into the hash table. 19749b247179SDarrick J. Wong * If successful, the entry will be owned by the cache; if not, it is freed. 19759b247179SDarrick J. Wong * Either way, the caller does not own @iu after this call. 19769b247179SDarrick J. Wong */ 19779b247179SDarrick J. Wong static int 19789b247179SDarrick J. Wong xfs_iunlink_insert_backref( 19799b247179SDarrick J. Wong struct xfs_perag *pag, 19809b247179SDarrick J. Wong struct xfs_iunlink *iu) 19819b247179SDarrick J. Wong { 19829b247179SDarrick J. Wong int error; 19839b247179SDarrick J. Wong 19849b247179SDarrick J. Wong error = rhashtable_insert_fast(&pag->pagi_unlinked_hash, 19859b247179SDarrick J. Wong &iu->iu_rhash_head, xfs_iunlink_hash_params); 19869b247179SDarrick J. Wong /* 19879b247179SDarrick J. Wong * Fail loudly if there already was an entry because that's a sign of 19889b247179SDarrick J. Wong * corruption of in-memory data. Also fail loudly if we see an error 19899b247179SDarrick J. Wong * code we didn't anticipate from the rhashtable code. Currently we 19909b247179SDarrick J. Wong * only anticipate ENOMEM. 19919b247179SDarrick J. Wong */ 19929b247179SDarrick J. Wong if (error) { 19939b247179SDarrick J. Wong WARN(error != -ENOMEM, "iunlink cache insert error %d", error); 19949b247179SDarrick J. Wong kmem_free(iu); 19959b247179SDarrick J. Wong } 19969b247179SDarrick J. Wong /* 19979b247179SDarrick J. Wong * Absorb any runtime errors that aren't a result of corruption because 19989b247179SDarrick J. Wong * this is a cache and we can always fall back to bucket list scanning. 19999b247179SDarrick J. Wong */ 20009b247179SDarrick J. Wong if (error != 0 && error != -EEXIST) 20019b247179SDarrick J. Wong error = 0; 20029b247179SDarrick J. Wong return error; 20039b247179SDarrick J. Wong } 20049b247179SDarrick J. Wong 20059b247179SDarrick J. Wong /* Remember that @prev_agino.next_unlinked = @this_agino. */ 20069b247179SDarrick J. Wong static int 20079b247179SDarrick J. Wong xfs_iunlink_add_backref( 20089b247179SDarrick J. Wong struct xfs_perag *pag, 20099b247179SDarrick J. Wong xfs_agino_t prev_agino, 20109b247179SDarrick J. Wong xfs_agino_t this_agino) 20119b247179SDarrick J. Wong { 20129b247179SDarrick J. Wong struct xfs_iunlink *iu; 20139b247179SDarrick J. Wong 20149b247179SDarrick J. Wong if (XFS_TEST_ERROR(false, pag->pag_mount, XFS_ERRTAG_IUNLINK_FALLBACK)) 20159b247179SDarrick J. Wong return 0; 20169b247179SDarrick J. Wong 2017707e0ddaSTetsuo Handa iu = kmem_zalloc(sizeof(*iu), KM_NOFS); 20189b247179SDarrick J. Wong iu->iu_agino = prev_agino; 20199b247179SDarrick J. Wong iu->iu_next_unlinked = this_agino; 20209b247179SDarrick J. Wong 20219b247179SDarrick J. Wong return xfs_iunlink_insert_backref(pag, iu); 20229b247179SDarrick J. Wong } 20239b247179SDarrick J. Wong 20249b247179SDarrick J. Wong /* 20259b247179SDarrick J. Wong * Replace X.next_unlinked = @agino with X.next_unlinked = @next_unlinked. 20269b247179SDarrick J. Wong * If @next_unlinked is NULLAGINO, we drop the backref and exit. If there 20279b247179SDarrick J. Wong * wasn't any such entry then we don't bother. 20289b247179SDarrick J. Wong */ 20299b247179SDarrick J. Wong static int 20309b247179SDarrick J. Wong xfs_iunlink_change_backref( 20319b247179SDarrick J. Wong struct xfs_perag *pag, 20329b247179SDarrick J. Wong xfs_agino_t agino, 20339b247179SDarrick J. Wong xfs_agino_t next_unlinked) 20349b247179SDarrick J. Wong { 20359b247179SDarrick J. Wong struct xfs_iunlink *iu; 20369b247179SDarrick J. Wong int error; 20379b247179SDarrick J. Wong 20389b247179SDarrick J. Wong /* Look up the old entry; if there wasn't one then exit. */ 20399b247179SDarrick J. Wong iu = rhashtable_lookup_fast(&pag->pagi_unlinked_hash, &agino, 20409b247179SDarrick J. Wong xfs_iunlink_hash_params); 20419b247179SDarrick J. Wong if (!iu) 20429b247179SDarrick J. Wong return 0; 20439b247179SDarrick J. Wong 20449b247179SDarrick J. Wong /* 20459b247179SDarrick J. Wong * Remove the entry. This shouldn't ever return an error, but if we 20469b247179SDarrick J. Wong * couldn't remove the old entry we don't want to add it again to the 20479b247179SDarrick J. Wong * hash table, and if the entry disappeared on us then someone's 20489b247179SDarrick J. Wong * violated the locking rules and we need to fail loudly. Either way 20499b247179SDarrick J. Wong * we cannot remove the inode because internal state is or would have 20509b247179SDarrick J. Wong * been corrupt. 20519b247179SDarrick J. Wong */ 20529b247179SDarrick J. Wong error = rhashtable_remove_fast(&pag->pagi_unlinked_hash, 20539b247179SDarrick J. Wong &iu->iu_rhash_head, xfs_iunlink_hash_params); 20549b247179SDarrick J. Wong if (error) 20559b247179SDarrick J. Wong return error; 20569b247179SDarrick J. Wong 20579b247179SDarrick J. Wong /* If there is no new next entry just free our item and return. */ 20589b247179SDarrick J. Wong if (next_unlinked == NULLAGINO) { 20599b247179SDarrick J. Wong kmem_free(iu); 20609b247179SDarrick J. Wong return 0; 20619b247179SDarrick J. Wong } 20629b247179SDarrick J. Wong 20639b247179SDarrick J. Wong /* Update the entry and re-add it to the hash table. */ 20649b247179SDarrick J. Wong iu->iu_next_unlinked = next_unlinked; 20659b247179SDarrick J. Wong return xfs_iunlink_insert_backref(pag, iu); 20669b247179SDarrick J. Wong } 20679b247179SDarrick J. Wong 20689b247179SDarrick J. Wong /* Set up the in-core predecessor structures. */ 20699b247179SDarrick J. Wong int 20709b247179SDarrick J. Wong xfs_iunlink_init( 20719b247179SDarrick J. Wong struct xfs_perag *pag) 20729b247179SDarrick J. Wong { 20739b247179SDarrick J. Wong return rhashtable_init(&pag->pagi_unlinked_hash, 20749b247179SDarrick J. Wong &xfs_iunlink_hash_params); 20759b247179SDarrick J. Wong } 20769b247179SDarrick J. Wong 20779b247179SDarrick J. Wong /* Free the in-core predecessor structures. */ 20789b247179SDarrick J. Wong static void 20799b247179SDarrick J. Wong xfs_iunlink_free_item( 20809b247179SDarrick J. Wong void *ptr, 20819b247179SDarrick J. Wong void *arg) 20829b247179SDarrick J. Wong { 20839b247179SDarrick J. Wong struct xfs_iunlink *iu = ptr; 20849b247179SDarrick J. Wong bool *freed_anything = arg; 20859b247179SDarrick J. Wong 20869b247179SDarrick J. Wong *freed_anything = true; 20879b247179SDarrick J. Wong kmem_free(iu); 20889b247179SDarrick J. Wong } 20899b247179SDarrick J. Wong 20909b247179SDarrick J. Wong void 20919b247179SDarrick J. Wong xfs_iunlink_destroy( 20929b247179SDarrick J. Wong struct xfs_perag *pag) 20939b247179SDarrick J. Wong { 20949b247179SDarrick J. Wong bool freed_anything = false; 20959b247179SDarrick J. Wong 20969b247179SDarrick J. Wong rhashtable_free_and_destroy(&pag->pagi_unlinked_hash, 20979b247179SDarrick J. Wong xfs_iunlink_free_item, &freed_anything); 20989b247179SDarrick J. Wong 20999b247179SDarrick J. Wong ASSERT(freed_anything == false || XFS_FORCED_SHUTDOWN(pag->pag_mount)); 21009b247179SDarrick J. Wong } 21019b247179SDarrick J. Wong 21029b247179SDarrick J. Wong /* 21039a4a5118SDarrick J. Wong * Point the AGI unlinked bucket at an inode and log the results. The caller 21049a4a5118SDarrick J. Wong * is responsible for validating the old value. 21059a4a5118SDarrick J. Wong */ 21069a4a5118SDarrick J. Wong STATIC int 21079a4a5118SDarrick J. Wong xfs_iunlink_update_bucket( 21089a4a5118SDarrick J. Wong struct xfs_trans *tp, 21099a4a5118SDarrick J. Wong xfs_agnumber_t agno, 21109a4a5118SDarrick J. Wong struct xfs_buf *agibp, 21119a4a5118SDarrick J. Wong unsigned int bucket_index, 21129a4a5118SDarrick J. Wong xfs_agino_t new_agino) 21139a4a5118SDarrick J. Wong { 2114370c782bSChristoph Hellwig struct xfs_agi *agi = agibp->b_addr; 21159a4a5118SDarrick J. Wong xfs_agino_t old_value; 21169a4a5118SDarrick J. Wong int offset; 21179a4a5118SDarrick J. Wong 21189a4a5118SDarrick J. Wong ASSERT(xfs_verify_agino_or_null(tp->t_mountp, agno, new_agino)); 21199a4a5118SDarrick J. Wong 21209a4a5118SDarrick J. Wong old_value = be32_to_cpu(agi->agi_unlinked[bucket_index]); 21219a4a5118SDarrick J. Wong trace_xfs_iunlink_update_bucket(tp->t_mountp, agno, bucket_index, 21229a4a5118SDarrick J. Wong old_value, new_agino); 21239a4a5118SDarrick J. Wong 21249a4a5118SDarrick J. Wong /* 21259a4a5118SDarrick J. Wong * We should never find the head of the list already set to the value 21269a4a5118SDarrick J. Wong * passed in because either we're adding or removing ourselves from the 21279a4a5118SDarrick J. Wong * head of the list. 21289a4a5118SDarrick J. Wong */ 2129a5155b87SDarrick J. Wong if (old_value == new_agino) { 21308d57c216SDarrick J. Wong xfs_buf_mark_corrupt(agibp); 21319a4a5118SDarrick J. Wong return -EFSCORRUPTED; 2132a5155b87SDarrick J. Wong } 21339a4a5118SDarrick J. Wong 21349a4a5118SDarrick J. Wong agi->agi_unlinked[bucket_index] = cpu_to_be32(new_agino); 21359a4a5118SDarrick J. Wong offset = offsetof(struct xfs_agi, agi_unlinked) + 21369a4a5118SDarrick J. Wong (sizeof(xfs_agino_t) * bucket_index); 21379a4a5118SDarrick J. Wong xfs_trans_log_buf(tp, agibp, offset, offset + sizeof(xfs_agino_t) - 1); 21389a4a5118SDarrick J. Wong return 0; 21399a4a5118SDarrick J. Wong } 21409a4a5118SDarrick J. Wong 2141f2fc16a3SDarrick J. Wong /* Set an on-disk inode's next_unlinked pointer. */ 2142f2fc16a3SDarrick J. Wong STATIC void 2143f2fc16a3SDarrick J. Wong xfs_iunlink_update_dinode( 2144f2fc16a3SDarrick J. Wong struct xfs_trans *tp, 2145f2fc16a3SDarrick J. Wong xfs_agnumber_t agno, 2146f2fc16a3SDarrick J. Wong xfs_agino_t agino, 2147f2fc16a3SDarrick J. Wong struct xfs_buf *ibp, 2148f2fc16a3SDarrick J. Wong struct xfs_dinode *dip, 2149f2fc16a3SDarrick J. Wong struct xfs_imap *imap, 2150f2fc16a3SDarrick J. Wong xfs_agino_t next_agino) 2151f2fc16a3SDarrick J. Wong { 2152f2fc16a3SDarrick J. Wong struct xfs_mount *mp = tp->t_mountp; 2153f2fc16a3SDarrick J. Wong int offset; 2154f2fc16a3SDarrick J. Wong 2155f2fc16a3SDarrick J. Wong ASSERT(xfs_verify_agino_or_null(mp, agno, next_agino)); 2156f2fc16a3SDarrick J. Wong 2157f2fc16a3SDarrick J. Wong trace_xfs_iunlink_update_dinode(mp, agno, agino, 2158f2fc16a3SDarrick J. Wong be32_to_cpu(dip->di_next_unlinked), next_agino); 2159f2fc16a3SDarrick J. Wong 2160f2fc16a3SDarrick J. Wong dip->di_next_unlinked = cpu_to_be32(next_agino); 2161f2fc16a3SDarrick J. Wong offset = imap->im_boffset + 2162f2fc16a3SDarrick J. Wong offsetof(struct xfs_dinode, di_next_unlinked); 2163f2fc16a3SDarrick J. Wong 2164f2fc16a3SDarrick J. Wong /* need to recalc the inode CRC if appropriate */ 2165f2fc16a3SDarrick J. Wong xfs_dinode_calc_crc(mp, dip); 2166f2fc16a3SDarrick J. Wong xfs_trans_inode_buf(tp, ibp); 2167f2fc16a3SDarrick J. Wong xfs_trans_log_buf(tp, ibp, offset, offset + sizeof(xfs_agino_t) - 1); 2168f2fc16a3SDarrick J. Wong xfs_inobp_check(mp, ibp); 2169f2fc16a3SDarrick J. Wong } 2170f2fc16a3SDarrick J. Wong 2171f2fc16a3SDarrick J. Wong /* Set an in-core inode's unlinked pointer and return the old value. */ 2172f2fc16a3SDarrick J. Wong STATIC int 2173f2fc16a3SDarrick J. Wong xfs_iunlink_update_inode( 2174f2fc16a3SDarrick J. Wong struct xfs_trans *tp, 2175f2fc16a3SDarrick J. Wong struct xfs_inode *ip, 2176f2fc16a3SDarrick J. Wong xfs_agnumber_t agno, 2177f2fc16a3SDarrick J. Wong xfs_agino_t next_agino, 2178f2fc16a3SDarrick J. Wong xfs_agino_t *old_next_agino) 2179f2fc16a3SDarrick J. Wong { 2180f2fc16a3SDarrick J. Wong struct xfs_mount *mp = tp->t_mountp; 2181f2fc16a3SDarrick J. Wong struct xfs_dinode *dip; 2182f2fc16a3SDarrick J. Wong struct xfs_buf *ibp; 2183f2fc16a3SDarrick J. Wong xfs_agino_t old_value; 2184f2fc16a3SDarrick J. Wong int error; 2185f2fc16a3SDarrick J. Wong 2186f2fc16a3SDarrick J. Wong ASSERT(xfs_verify_agino_or_null(mp, agno, next_agino)); 2187f2fc16a3SDarrick J. Wong 2188c1995079SBrian Foster error = xfs_imap_to_bp(mp, tp, &ip->i_imap, &dip, &ibp, 0); 2189f2fc16a3SDarrick J. Wong if (error) 2190f2fc16a3SDarrick J. Wong return error; 2191f2fc16a3SDarrick J. Wong 2192f2fc16a3SDarrick J. Wong /* Make sure the old pointer isn't garbage. */ 2193f2fc16a3SDarrick J. Wong old_value = be32_to_cpu(dip->di_next_unlinked); 2194f2fc16a3SDarrick J. Wong if (!xfs_verify_agino_or_null(mp, agno, old_value)) { 2195a5155b87SDarrick J. Wong xfs_inode_verifier_error(ip, -EFSCORRUPTED, __func__, dip, 2196a5155b87SDarrick J. Wong sizeof(*dip), __this_address); 2197f2fc16a3SDarrick J. Wong error = -EFSCORRUPTED; 2198f2fc16a3SDarrick J. Wong goto out; 2199f2fc16a3SDarrick J. Wong } 2200f2fc16a3SDarrick J. Wong 2201f2fc16a3SDarrick J. Wong /* 2202f2fc16a3SDarrick J. Wong * Since we're updating a linked list, we should never find that the 2203f2fc16a3SDarrick J. Wong * current pointer is the same as the new value, unless we're 2204f2fc16a3SDarrick J. Wong * terminating the list. 2205f2fc16a3SDarrick J. Wong */ 2206f2fc16a3SDarrick J. Wong *old_next_agino = old_value; 2207f2fc16a3SDarrick J. Wong if (old_value == next_agino) { 2208a5155b87SDarrick J. Wong if (next_agino != NULLAGINO) { 2209a5155b87SDarrick J. Wong xfs_inode_verifier_error(ip, -EFSCORRUPTED, __func__, 2210a5155b87SDarrick J. Wong dip, sizeof(*dip), __this_address); 2211f2fc16a3SDarrick J. Wong error = -EFSCORRUPTED; 2212a5155b87SDarrick J. Wong } 2213f2fc16a3SDarrick J. Wong goto out; 2214f2fc16a3SDarrick J. Wong } 2215f2fc16a3SDarrick J. Wong 2216f2fc16a3SDarrick J. Wong /* Ok, update the new pointer. */ 2217f2fc16a3SDarrick J. Wong xfs_iunlink_update_dinode(tp, agno, XFS_INO_TO_AGINO(mp, ip->i_ino), 2218f2fc16a3SDarrick J. Wong ibp, dip, &ip->i_imap, next_agino); 2219f2fc16a3SDarrick J. Wong return 0; 2220f2fc16a3SDarrick J. Wong out: 2221f2fc16a3SDarrick J. Wong xfs_trans_brelse(tp, ibp); 2222f2fc16a3SDarrick J. Wong return error; 2223f2fc16a3SDarrick J. Wong } 2224f2fc16a3SDarrick J. Wong 22259a4a5118SDarrick J. Wong /* 2226c4a6bf7fSDarrick J. Wong * This is called when the inode's link count has gone to 0 or we are creating 2227c4a6bf7fSDarrick J. Wong * a tmpfile via O_TMPFILE. The inode @ip must have nlink == 0. 222854d7b5c1SDave Chinner * 222954d7b5c1SDave Chinner * We place the on-disk inode on a list in the AGI. It will be pulled from this 223054d7b5c1SDave Chinner * list when the inode is freed. 22311da177e4SLinus Torvalds */ 223254d7b5c1SDave Chinner STATIC int 22331da177e4SLinus Torvalds xfs_iunlink( 223454d7b5c1SDave Chinner struct xfs_trans *tp, 223554d7b5c1SDave Chinner struct xfs_inode *ip) 22361da177e4SLinus Torvalds { 22375837f625SDarrick J. Wong struct xfs_mount *mp = tp->t_mountp; 22385837f625SDarrick J. Wong struct xfs_agi *agi; 22395837f625SDarrick J. Wong struct xfs_buf *agibp; 224086bfd375SDarrick J. Wong xfs_agino_t next_agino; 22415837f625SDarrick J. Wong xfs_agnumber_t agno = XFS_INO_TO_AGNO(mp, ip->i_ino); 22425837f625SDarrick J. Wong xfs_agino_t agino = XFS_INO_TO_AGINO(mp, ip->i_ino); 22435837f625SDarrick J. Wong short bucket_index = agino % XFS_AGI_UNLINKED_BUCKETS; 22441da177e4SLinus Torvalds int error; 22451da177e4SLinus Torvalds 2246c4a6bf7fSDarrick J. Wong ASSERT(VFS_I(ip)->i_nlink == 0); 2247c19b3b05SDave Chinner ASSERT(VFS_I(ip)->i_mode != 0); 22484664c66cSDarrick J. Wong trace_xfs_iunlink(ip); 22491da177e4SLinus Torvalds 22505837f625SDarrick J. Wong /* Get the agi buffer first. It ensures lock ordering on the list. */ 22515837f625SDarrick J. Wong error = xfs_read_agi(mp, tp, agno, &agibp); 2252859d7182SVlad Apostolov if (error) 22531da177e4SLinus Torvalds return error; 2254370c782bSChristoph Hellwig agi = agibp->b_addr; 22555e1be0fbSChristoph Hellwig 22561da177e4SLinus Torvalds /* 225786bfd375SDarrick J. Wong * Get the index into the agi hash table for the list this inode will 225886bfd375SDarrick J. Wong * go on. Make sure the pointer isn't garbage and that this inode 225986bfd375SDarrick J. Wong * isn't already on the list. 22601da177e4SLinus Torvalds */ 226186bfd375SDarrick J. Wong next_agino = be32_to_cpu(agi->agi_unlinked[bucket_index]); 226286bfd375SDarrick J. Wong if (next_agino == agino || 2263a5155b87SDarrick J. Wong !xfs_verify_agino_or_null(mp, agno, next_agino)) { 22648d57c216SDarrick J. Wong xfs_buf_mark_corrupt(agibp); 226586bfd375SDarrick J. Wong return -EFSCORRUPTED; 2266a5155b87SDarrick J. Wong } 22671da177e4SLinus Torvalds 226886bfd375SDarrick J. Wong if (next_agino != NULLAGINO) { 22699b247179SDarrick J. Wong struct xfs_perag *pag; 2270f2fc16a3SDarrick J. Wong xfs_agino_t old_agino; 2271f2fc16a3SDarrick J. Wong 22721da177e4SLinus Torvalds /* 2273f2fc16a3SDarrick J. Wong * There is already another inode in the bucket, so point this 2274f2fc16a3SDarrick J. Wong * inode to the current head of the list. 22751da177e4SLinus Torvalds */ 2276f2fc16a3SDarrick J. Wong error = xfs_iunlink_update_inode(tp, ip, agno, next_agino, 2277f2fc16a3SDarrick J. Wong &old_agino); 2278c319b58bSVlad Apostolov if (error) 2279c319b58bSVlad Apostolov return error; 2280f2fc16a3SDarrick J. Wong ASSERT(old_agino == NULLAGINO); 22819b247179SDarrick J. Wong 22829b247179SDarrick J. Wong /* 22839b247179SDarrick J. Wong * agino has been unlinked, add a backref from the next inode 22849b247179SDarrick J. Wong * back to agino. 22859b247179SDarrick J. Wong */ 22869b247179SDarrick J. Wong pag = xfs_perag_get(mp, agno); 22879b247179SDarrick J. Wong error = xfs_iunlink_add_backref(pag, agino, next_agino); 22889b247179SDarrick J. Wong xfs_perag_put(pag); 22899b247179SDarrick J. Wong if (error) 22909b247179SDarrick J. Wong return error; 22911da177e4SLinus Torvalds } 22921da177e4SLinus Torvalds 22939a4a5118SDarrick J. Wong /* Point the head of the list to point to this inode. */ 22949a4a5118SDarrick J. Wong return xfs_iunlink_update_bucket(tp, agno, agibp, bucket_index, agino); 22951da177e4SLinus Torvalds } 22961da177e4SLinus Torvalds 229723ffa52cSDarrick J. Wong /* Return the imap, dinode pointer, and buffer for an inode. */ 229823ffa52cSDarrick J. Wong STATIC int 229923ffa52cSDarrick J. Wong xfs_iunlink_map_ino( 230023ffa52cSDarrick J. Wong struct xfs_trans *tp, 230123ffa52cSDarrick J. Wong xfs_agnumber_t agno, 230223ffa52cSDarrick J. Wong xfs_agino_t agino, 230323ffa52cSDarrick J. Wong struct xfs_imap *imap, 230423ffa52cSDarrick J. Wong struct xfs_dinode **dipp, 230523ffa52cSDarrick J. Wong struct xfs_buf **bpp) 230623ffa52cSDarrick J. Wong { 230723ffa52cSDarrick J. Wong struct xfs_mount *mp = tp->t_mountp; 230823ffa52cSDarrick J. Wong int error; 230923ffa52cSDarrick J. Wong 231023ffa52cSDarrick J. Wong imap->im_blkno = 0; 231123ffa52cSDarrick J. Wong error = xfs_imap(mp, tp, XFS_AGINO_TO_INO(mp, agno, agino), imap, 0); 231223ffa52cSDarrick J. Wong if (error) { 231323ffa52cSDarrick J. Wong xfs_warn(mp, "%s: xfs_imap returned error %d.", 231423ffa52cSDarrick J. Wong __func__, error); 231523ffa52cSDarrick J. Wong return error; 231623ffa52cSDarrick J. Wong } 231723ffa52cSDarrick J. Wong 2318c1995079SBrian Foster error = xfs_imap_to_bp(mp, tp, imap, dipp, bpp, 0); 231923ffa52cSDarrick J. Wong if (error) { 232023ffa52cSDarrick J. Wong xfs_warn(mp, "%s: xfs_imap_to_bp returned error %d.", 232123ffa52cSDarrick J. Wong __func__, error); 232223ffa52cSDarrick J. Wong return error; 232323ffa52cSDarrick J. Wong } 232423ffa52cSDarrick J. Wong 232523ffa52cSDarrick J. Wong return 0; 232623ffa52cSDarrick J. Wong } 232723ffa52cSDarrick J. Wong 232823ffa52cSDarrick J. Wong /* 232923ffa52cSDarrick J. Wong * Walk the unlinked chain from @head_agino until we find the inode that 233023ffa52cSDarrick J. Wong * points to @target_agino. Return the inode number, map, dinode pointer, 233123ffa52cSDarrick J. Wong * and inode cluster buffer of that inode as @agino, @imap, @dipp, and @bpp. 233223ffa52cSDarrick J. Wong * 233323ffa52cSDarrick J. Wong * @tp, @pag, @head_agino, and @target_agino are input parameters. 233423ffa52cSDarrick J. Wong * @agino, @imap, @dipp, and @bpp are all output parameters. 233523ffa52cSDarrick J. Wong * 233623ffa52cSDarrick J. Wong * Do not call this function if @target_agino is the head of the list. 233723ffa52cSDarrick J. Wong */ 233823ffa52cSDarrick J. Wong STATIC int 233923ffa52cSDarrick J. Wong xfs_iunlink_map_prev( 234023ffa52cSDarrick J. Wong struct xfs_trans *tp, 234123ffa52cSDarrick J. Wong xfs_agnumber_t agno, 234223ffa52cSDarrick J. Wong xfs_agino_t head_agino, 234323ffa52cSDarrick J. Wong xfs_agino_t target_agino, 234423ffa52cSDarrick J. Wong xfs_agino_t *agino, 234523ffa52cSDarrick J. Wong struct xfs_imap *imap, 234623ffa52cSDarrick J. Wong struct xfs_dinode **dipp, 23479b247179SDarrick J. Wong struct xfs_buf **bpp, 23489b247179SDarrick J. Wong struct xfs_perag *pag) 234923ffa52cSDarrick J. Wong { 235023ffa52cSDarrick J. Wong struct xfs_mount *mp = tp->t_mountp; 235123ffa52cSDarrick J. Wong xfs_agino_t next_agino; 235223ffa52cSDarrick J. Wong int error; 235323ffa52cSDarrick J. Wong 235423ffa52cSDarrick J. Wong ASSERT(head_agino != target_agino); 235523ffa52cSDarrick J. Wong *bpp = NULL; 235623ffa52cSDarrick J. Wong 23579b247179SDarrick J. Wong /* See if our backref cache can find it faster. */ 23589b247179SDarrick J. Wong *agino = xfs_iunlink_lookup_backref(pag, target_agino); 23599b247179SDarrick J. Wong if (*agino != NULLAGINO) { 23609b247179SDarrick J. Wong error = xfs_iunlink_map_ino(tp, agno, *agino, imap, dipp, bpp); 23619b247179SDarrick J. Wong if (error) 23629b247179SDarrick J. Wong return error; 23639b247179SDarrick J. Wong 23649b247179SDarrick J. Wong if (be32_to_cpu((*dipp)->di_next_unlinked) == target_agino) 23659b247179SDarrick J. Wong return 0; 23669b247179SDarrick J. Wong 23679b247179SDarrick J. Wong /* 23689b247179SDarrick J. Wong * If we get here the cache contents were corrupt, so drop the 23699b247179SDarrick J. Wong * buffer and fall back to walking the bucket list. 23709b247179SDarrick J. Wong */ 23719b247179SDarrick J. Wong xfs_trans_brelse(tp, *bpp); 23729b247179SDarrick J. Wong *bpp = NULL; 23739b247179SDarrick J. Wong WARN_ON_ONCE(1); 23749b247179SDarrick J. Wong } 23759b247179SDarrick J. Wong 23769b247179SDarrick J. Wong trace_xfs_iunlink_map_prev_fallback(mp, agno); 23779b247179SDarrick J. Wong 23789b247179SDarrick J. Wong /* Otherwise, walk the entire bucket until we find it. */ 237923ffa52cSDarrick J. Wong next_agino = head_agino; 238023ffa52cSDarrick J. Wong while (next_agino != target_agino) { 238123ffa52cSDarrick J. Wong xfs_agino_t unlinked_agino; 238223ffa52cSDarrick J. Wong 238323ffa52cSDarrick J. Wong if (*bpp) 238423ffa52cSDarrick J. Wong xfs_trans_brelse(tp, *bpp); 238523ffa52cSDarrick J. Wong 238623ffa52cSDarrick J. Wong *agino = next_agino; 238723ffa52cSDarrick J. Wong error = xfs_iunlink_map_ino(tp, agno, next_agino, imap, dipp, 238823ffa52cSDarrick J. Wong bpp); 238923ffa52cSDarrick J. Wong if (error) 239023ffa52cSDarrick J. Wong return error; 239123ffa52cSDarrick J. Wong 239223ffa52cSDarrick J. Wong unlinked_agino = be32_to_cpu((*dipp)->di_next_unlinked); 239323ffa52cSDarrick J. Wong /* 239423ffa52cSDarrick J. Wong * Make sure this pointer is valid and isn't an obvious 239523ffa52cSDarrick J. Wong * infinite loop. 239623ffa52cSDarrick J. Wong */ 239723ffa52cSDarrick J. Wong if (!xfs_verify_agino(mp, agno, unlinked_agino) || 239823ffa52cSDarrick J. Wong next_agino == unlinked_agino) { 239923ffa52cSDarrick J. Wong XFS_CORRUPTION_ERROR(__func__, 240023ffa52cSDarrick J. Wong XFS_ERRLEVEL_LOW, mp, 240123ffa52cSDarrick J. Wong *dipp, sizeof(**dipp)); 240223ffa52cSDarrick J. Wong error = -EFSCORRUPTED; 240323ffa52cSDarrick J. Wong return error; 240423ffa52cSDarrick J. Wong } 240523ffa52cSDarrick J. Wong next_agino = unlinked_agino; 240623ffa52cSDarrick J. Wong } 240723ffa52cSDarrick J. Wong 240823ffa52cSDarrick J. Wong return 0; 240923ffa52cSDarrick J. Wong } 241023ffa52cSDarrick J. Wong 24111da177e4SLinus Torvalds /* 24121da177e4SLinus Torvalds * Pull the on-disk inode from the AGI unlinked list. 24131da177e4SLinus Torvalds */ 24141da177e4SLinus Torvalds STATIC int 24151da177e4SLinus Torvalds xfs_iunlink_remove( 24165837f625SDarrick J. Wong struct xfs_trans *tp, 24175837f625SDarrick J. Wong struct xfs_inode *ip) 24181da177e4SLinus Torvalds { 24195837f625SDarrick J. Wong struct xfs_mount *mp = tp->t_mountp; 24205837f625SDarrick J. Wong struct xfs_agi *agi; 24215837f625SDarrick J. Wong struct xfs_buf *agibp; 24225837f625SDarrick J. Wong struct xfs_buf *last_ibp; 24235837f625SDarrick J. Wong struct xfs_dinode *last_dip = NULL; 24249b247179SDarrick J. Wong struct xfs_perag *pag = NULL; 24255837f625SDarrick J. Wong xfs_agnumber_t agno = XFS_INO_TO_AGNO(mp, ip->i_ino); 24265837f625SDarrick J. Wong xfs_agino_t agino = XFS_INO_TO_AGINO(mp, ip->i_ino); 24271da177e4SLinus Torvalds xfs_agino_t next_agino; 2428b1d2a068SDarrick J. Wong xfs_agino_t head_agino; 24295837f625SDarrick J. Wong short bucket_index = agino % XFS_AGI_UNLINKED_BUCKETS; 24301da177e4SLinus Torvalds int error; 24311da177e4SLinus Torvalds 24324664c66cSDarrick J. Wong trace_xfs_iunlink_remove(ip); 24334664c66cSDarrick J. Wong 24345837f625SDarrick J. Wong /* Get the agi buffer first. It ensures lock ordering on the list. */ 24355e1be0fbSChristoph Hellwig error = xfs_read_agi(mp, tp, agno, &agibp); 24365e1be0fbSChristoph Hellwig if (error) 24371da177e4SLinus Torvalds return error; 2438370c782bSChristoph Hellwig agi = agibp->b_addr; 24395e1be0fbSChristoph Hellwig 24401da177e4SLinus Torvalds /* 244186bfd375SDarrick J. Wong * Get the index into the agi hash table for the list this inode will 244286bfd375SDarrick J. Wong * go on. Make sure the head pointer isn't garbage. 24431da177e4SLinus Torvalds */ 2444b1d2a068SDarrick J. Wong head_agino = be32_to_cpu(agi->agi_unlinked[bucket_index]); 2445b1d2a068SDarrick J. Wong if (!xfs_verify_agino(mp, agno, head_agino)) { 2446d2e73665SDarrick J. Wong XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, mp, 2447d2e73665SDarrick J. Wong agi, sizeof(*agi)); 2448d2e73665SDarrick J. Wong return -EFSCORRUPTED; 2449d2e73665SDarrick J. Wong } 24501da177e4SLinus Torvalds 24511da177e4SLinus Torvalds /* 2452b1d2a068SDarrick J. Wong * Set our inode's next_unlinked pointer to NULL and then return 2453b1d2a068SDarrick J. Wong * the old pointer value so that we can update whatever was previous 2454b1d2a068SDarrick J. Wong * to us in the list to point to whatever was next in the list. 24551da177e4SLinus Torvalds */ 2456b1d2a068SDarrick J. Wong error = xfs_iunlink_update_inode(tp, ip, agno, NULLAGINO, &next_agino); 2457f2fc16a3SDarrick J. Wong if (error) 24581da177e4SLinus Torvalds return error; 24599a4a5118SDarrick J. Wong 24609b247179SDarrick J. Wong /* 24619b247179SDarrick J. Wong * If there was a backref pointing from the next inode back to this 24629b247179SDarrick J. Wong * one, remove it because we've removed this inode from the list. 24639b247179SDarrick J. Wong * 24649b247179SDarrick J. Wong * Later, if this inode was in the middle of the list we'll update 24659b247179SDarrick J. Wong * this inode's backref to point from the next inode. 24669b247179SDarrick J. Wong */ 24679b247179SDarrick J. Wong if (next_agino != NULLAGINO) { 24689b247179SDarrick J. Wong pag = xfs_perag_get(mp, agno); 24699b247179SDarrick J. Wong error = xfs_iunlink_change_backref(pag, next_agino, 24709b247179SDarrick J. Wong NULLAGINO); 24719b247179SDarrick J. Wong if (error) 24729b247179SDarrick J. Wong goto out; 24739b247179SDarrick J. Wong } 24749b247179SDarrick J. Wong 2475b1d2a068SDarrick J. Wong if (head_agino == agino) { 24769a4a5118SDarrick J. Wong /* Point the head of the list to the next unlinked inode. */ 24779a4a5118SDarrick J. Wong error = xfs_iunlink_update_bucket(tp, agno, agibp, bucket_index, 24789a4a5118SDarrick J. Wong next_agino); 24799a4a5118SDarrick J. Wong if (error) 24809b247179SDarrick J. Wong goto out; 24811da177e4SLinus Torvalds } else { 2482f2fc16a3SDarrick J. Wong struct xfs_imap imap; 2483f2fc16a3SDarrick J. Wong xfs_agino_t prev_agino; 2484f2fc16a3SDarrick J. Wong 24859b247179SDarrick J. Wong if (!pag) 24869b247179SDarrick J. Wong pag = xfs_perag_get(mp, agno); 24879b247179SDarrick J. Wong 248823ffa52cSDarrick J. Wong /* We need to search the list for the inode being freed. */ 2489b1d2a068SDarrick J. Wong error = xfs_iunlink_map_prev(tp, agno, head_agino, agino, 24909b247179SDarrick J. Wong &prev_agino, &imap, &last_dip, &last_ibp, 24919b247179SDarrick J. Wong pag); 249223ffa52cSDarrick J. Wong if (error) 24939b247179SDarrick J. Wong goto out; 2494475ee413SChristoph Hellwig 2495f2fc16a3SDarrick J. Wong /* Point the previous inode on the list to the next inode. */ 2496f2fc16a3SDarrick J. Wong xfs_iunlink_update_dinode(tp, agno, prev_agino, last_ibp, 2497f2fc16a3SDarrick J. Wong last_dip, &imap, next_agino); 24989b247179SDarrick J. Wong 24999b247179SDarrick J. Wong /* 25009b247179SDarrick J. Wong * Now we deal with the backref for this inode. If this inode 25019b247179SDarrick J. Wong * pointed at a real inode, change the backref that pointed to 25029b247179SDarrick J. Wong * us to point to our old next. If this inode was the end of 25039b247179SDarrick J. Wong * the list, delete the backref that pointed to us. Note that 25049b247179SDarrick J. Wong * change_backref takes care of deleting the backref if 25059b247179SDarrick J. Wong * next_agino is NULLAGINO. 25069b247179SDarrick J. Wong */ 25079b247179SDarrick J. Wong error = xfs_iunlink_change_backref(pag, agino, next_agino); 25089b247179SDarrick J. Wong if (error) 25099b247179SDarrick J. Wong goto out; 25101da177e4SLinus Torvalds } 25119b247179SDarrick J. Wong 25129b247179SDarrick J. Wong out: 25139b247179SDarrick J. Wong if (pag) 25149b247179SDarrick J. Wong xfs_perag_put(pag); 25159b247179SDarrick J. Wong return error; 25161da177e4SLinus Torvalds } 25171da177e4SLinus Torvalds 25185b3eed75SDave Chinner /* 251971e3e356SDave Chinner * Look up the inode number specified and if it is not already marked XFS_ISTALE 252071e3e356SDave Chinner * mark it stale. We should only find clean inodes in this lookup that aren't 252171e3e356SDave Chinner * already stale. 25225806165aSDave Chinner */ 252371e3e356SDave Chinner static void 252471e3e356SDave Chinner xfs_ifree_mark_inode_stale( 252571e3e356SDave Chinner struct xfs_buf *bp, 25265806165aSDave Chinner struct xfs_inode *free_ip, 2527d9fdd0adSBrian Foster xfs_ino_t inum) 25285806165aSDave Chinner { 252971e3e356SDave Chinner struct xfs_mount *mp = bp->b_mount; 253071e3e356SDave Chinner struct xfs_perag *pag = bp->b_pag; 253171e3e356SDave Chinner struct xfs_inode_log_item *iip; 25325806165aSDave Chinner struct xfs_inode *ip; 25335806165aSDave Chinner 25345806165aSDave Chinner retry: 25355806165aSDave Chinner rcu_read_lock(); 25365806165aSDave Chinner ip = radix_tree_lookup(&pag->pag_ici_root, XFS_INO_TO_AGINO(mp, inum)); 25375806165aSDave Chinner 25385806165aSDave Chinner /* Inode not in memory, nothing to do */ 253971e3e356SDave Chinner if (!ip) { 254071e3e356SDave Chinner rcu_read_unlock(); 254171e3e356SDave Chinner return; 254271e3e356SDave Chinner } 25435806165aSDave Chinner 25445806165aSDave Chinner /* 25455806165aSDave Chinner * because this is an RCU protected lookup, we could find a recently 25465806165aSDave Chinner * freed or even reallocated inode during the lookup. We need to check 25475806165aSDave Chinner * under the i_flags_lock for a valid inode here. Skip it if it is not 25485806165aSDave Chinner * valid, the wrong inode or stale. 25495806165aSDave Chinner */ 25505806165aSDave Chinner spin_lock(&ip->i_flags_lock); 25515806165aSDave Chinner if (ip->i_ino != inum || __xfs_iflags_test(ip, XFS_ISTALE)) { 25525806165aSDave Chinner spin_unlock(&ip->i_flags_lock); 255371e3e356SDave Chinner rcu_read_unlock(); 255471e3e356SDave Chinner return; 25555806165aSDave Chinner } 25565806165aSDave Chinner 25575806165aSDave Chinner /* 25585806165aSDave Chinner * Don't try to lock/unlock the current inode, but we _cannot_ skip the 25595806165aSDave Chinner * other inodes that we did not find in the list attached to the buffer 25605806165aSDave Chinner * and are not already marked stale. If we can't lock it, back off and 25615806165aSDave Chinner * retry. 25625806165aSDave Chinner */ 25635806165aSDave Chinner if (ip != free_ip) { 25645806165aSDave Chinner if (!xfs_ilock_nowait(ip, XFS_ILOCK_EXCL)) { 256571e3e356SDave Chinner spin_unlock(&ip->i_flags_lock); 25665806165aSDave Chinner rcu_read_unlock(); 25675806165aSDave Chinner delay(1); 25685806165aSDave Chinner goto retry; 25695806165aSDave Chinner } 25705806165aSDave Chinner } 257171e3e356SDave Chinner ip->i_flags |= XFS_ISTALE; 257271e3e356SDave Chinner spin_unlock(&ip->i_flags_lock); 25735806165aSDave Chinner rcu_read_unlock(); 25745806165aSDave Chinner 257571e3e356SDave Chinner /* 257671e3e356SDave Chinner * If we can't get the flush lock, the inode is already attached. All 257771e3e356SDave Chinner * we needed to do here is mark the inode stale so buffer IO completion 257871e3e356SDave Chinner * will remove it from the AIL. 257971e3e356SDave Chinner */ 258071e3e356SDave Chinner iip = ip->i_itemp; 258171e3e356SDave Chinner if (!xfs_iflock_nowait(ip)) { 258271e3e356SDave Chinner ASSERT(!list_empty(&iip->ili_item.li_bio_list)); 258371e3e356SDave Chinner ASSERT(iip->ili_last_fields); 258471e3e356SDave Chinner goto out_iunlock; 258571e3e356SDave Chinner } 25865806165aSDave Chinner 25875806165aSDave Chinner /* 258848d55e2aSDave Chinner * Inodes not attached to the buffer can be released immediately. 258948d55e2aSDave Chinner * Everything else has to go through xfs_iflush_abort() on journal 259048d55e2aSDave Chinner * commit as the flock synchronises removal of the inode from the 259148d55e2aSDave Chinner * cluster buffer against inode reclaim. 25925806165aSDave Chinner */ 259348d55e2aSDave Chinner if (!iip || list_empty(&iip->ili_item.li_bio_list)) { 25945806165aSDave Chinner xfs_ifunlock(ip); 259571e3e356SDave Chinner goto out_iunlock; 25965806165aSDave Chinner } 25975806165aSDave Chinner 259871e3e356SDave Chinner /* we have a dirty inode in memory that has not yet been flushed. */ 259971e3e356SDave Chinner spin_lock(&iip->ili_lock); 260071e3e356SDave Chinner iip->ili_last_fields = iip->ili_fields; 260171e3e356SDave Chinner iip->ili_fields = 0; 260271e3e356SDave Chinner iip->ili_fsync_fields = 0; 260371e3e356SDave Chinner spin_unlock(&iip->ili_lock); 260471e3e356SDave Chinner ASSERT(iip->ili_last_fields); 260571e3e356SDave Chinner 260671e3e356SDave Chinner out_iunlock: 260771e3e356SDave Chinner if (ip != free_ip) 260871e3e356SDave Chinner xfs_iunlock(ip, XFS_ILOCK_EXCL); 26095806165aSDave Chinner } 26105806165aSDave Chinner 26115806165aSDave Chinner /* 26120b8182dbSZhi Yong Wu * A big issue when freeing the inode cluster is that we _cannot_ skip any 26135b3eed75SDave Chinner * inodes that are in memory - they all must be marked stale and attached to 26145b3eed75SDave Chinner * the cluster buffer. 26155b3eed75SDave Chinner */ 26162a30f36dSChandra Seetharaman STATIC int 26171da177e4SLinus Torvalds xfs_ifree_cluster( 261871e3e356SDave Chinner struct xfs_inode *free_ip, 261971e3e356SDave Chinner struct xfs_trans *tp, 262009b56604SBrian Foster struct xfs_icluster *xic) 26211da177e4SLinus Torvalds { 262271e3e356SDave Chinner struct xfs_mount *mp = free_ip->i_mount; 262371e3e356SDave Chinner struct xfs_ino_geometry *igeo = M_IGEO(mp); 262471e3e356SDave Chinner struct xfs_buf *bp; 262571e3e356SDave Chinner xfs_daddr_t blkno; 262671e3e356SDave Chinner xfs_ino_t inum = xic->first_ino; 26271da177e4SLinus Torvalds int nbufs; 26285b257b4aSDave Chinner int i, j; 26293cdaa189SBrian Foster int ioffset; 2630ce92464cSDarrick J. Wong int error; 26311da177e4SLinus Torvalds 2632ef325959SDarrick J. Wong nbufs = igeo->ialloc_blks / igeo->blocks_per_cluster; 26331da177e4SLinus Torvalds 2634ef325959SDarrick J. Wong for (j = 0; j < nbufs; j++, inum += igeo->inodes_per_cluster) { 263509b56604SBrian Foster /* 263609b56604SBrian Foster * The allocation bitmap tells us which inodes of the chunk were 263709b56604SBrian Foster * physically allocated. Skip the cluster if an inode falls into 263809b56604SBrian Foster * a sparse region. 263909b56604SBrian Foster */ 26403cdaa189SBrian Foster ioffset = inum - xic->first_ino; 26413cdaa189SBrian Foster if ((xic->alloc & XFS_INOBT_MASK(ioffset)) == 0) { 2642ef325959SDarrick J. Wong ASSERT(ioffset % igeo->inodes_per_cluster == 0); 264309b56604SBrian Foster continue; 264409b56604SBrian Foster } 264509b56604SBrian Foster 26461da177e4SLinus Torvalds blkno = XFS_AGB_TO_DADDR(mp, XFS_INO_TO_AGNO(mp, inum), 26471da177e4SLinus Torvalds XFS_INO_TO_AGBNO(mp, inum)); 26481da177e4SLinus Torvalds 26491da177e4SLinus Torvalds /* 26505b257b4aSDave Chinner * We obtain and lock the backing buffer first in the process 26515b257b4aSDave Chinner * here, as we have to ensure that any dirty inode that we 26525b257b4aSDave Chinner * can't get the flush lock on is attached to the buffer. 26535b257b4aSDave Chinner * If we scan the in-memory inodes first, then buffer IO can 26545b257b4aSDave Chinner * complete before we get a lock on it, and hence we may fail 26555b257b4aSDave Chinner * to mark all the active inodes on the buffer stale. 26561da177e4SLinus Torvalds */ 2657ce92464cSDarrick J. Wong error = xfs_trans_get_buf(tp, mp->m_ddev_targp, blkno, 2658ef325959SDarrick J. Wong mp->m_bsize * igeo->blocks_per_cluster, 2659ce92464cSDarrick J. Wong XBF_UNMAPPED, &bp); 266071e3e356SDave Chinner if (error) 2661ce92464cSDarrick J. Wong return error; 2662b0f539deSDave Chinner 2663b0f539deSDave Chinner /* 2664b0f539deSDave Chinner * This buffer may not have been correctly initialised as we 2665b0f539deSDave Chinner * didn't read it from disk. That's not important because we are 2666b0f539deSDave Chinner * only using to mark the buffer as stale in the log, and to 2667b0f539deSDave Chinner * attach stale cached inodes on it. That means it will never be 2668b0f539deSDave Chinner * dispatched for IO. If it is, we want to know about it, and we 2669b0f539deSDave Chinner * want it to fail. We can acheive this by adding a write 2670b0f539deSDave Chinner * verifier to the buffer. 2671b0f539deSDave Chinner */ 26721813dd64SDave Chinner bp->b_ops = &xfs_inode_buf_ops; 2673b0f539deSDave Chinner 26745b257b4aSDave Chinner /* 267571e3e356SDave Chinner * Now we need to set all the cached clean inodes as XFS_ISTALE, 267671e3e356SDave Chinner * too. This requires lookups, and will skip inodes that we've 267771e3e356SDave Chinner * already marked XFS_ISTALE. 26785b257b4aSDave Chinner */ 267971e3e356SDave Chinner for (i = 0; i < igeo->inodes_per_cluster; i++) 268071e3e356SDave Chinner xfs_ifree_mark_inode_stale(bp, free_ip, inum + i); 26811da177e4SLinus Torvalds 26821da177e4SLinus Torvalds xfs_trans_stale_inode_buf(tp, bp); 26831da177e4SLinus Torvalds xfs_trans_binval(tp, bp); 26841da177e4SLinus Torvalds } 26852a30f36dSChandra Seetharaman return 0; 26861da177e4SLinus Torvalds } 26871da177e4SLinus Torvalds 26881da177e4SLinus Torvalds /* 26891da177e4SLinus Torvalds * This is called to return an inode to the inode free list. 26901da177e4SLinus Torvalds * The inode should already be truncated to 0 length and have 26911da177e4SLinus Torvalds * no pages associated with it. This routine also assumes that 26921da177e4SLinus Torvalds * the inode is already a part of the transaction. 26931da177e4SLinus Torvalds * 26941da177e4SLinus Torvalds * The on-disk copy of the inode will have been added to the list 26951da177e4SLinus Torvalds * of unlinked inodes in the AGI. We need to remove the inode from 26961da177e4SLinus Torvalds * that list atomically with respect to freeing it here. 26971da177e4SLinus Torvalds */ 26981da177e4SLinus Torvalds int 26991da177e4SLinus Torvalds xfs_ifree( 27000e0417f3SBrian Foster struct xfs_trans *tp, 27010e0417f3SBrian Foster struct xfs_inode *ip) 27021da177e4SLinus Torvalds { 27031da177e4SLinus Torvalds int error; 270409b56604SBrian Foster struct xfs_icluster xic = { 0 }; 27051319ebefSDave Chinner struct xfs_inode_log_item *iip = ip->i_itemp; 27061da177e4SLinus Torvalds 2707579aa9caSChristoph Hellwig ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL)); 270854d7b5c1SDave Chinner ASSERT(VFS_I(ip)->i_nlink == 0); 2709daf83964SChristoph Hellwig ASSERT(ip->i_df.if_nextents == 0); 2710c19b3b05SDave Chinner ASSERT(ip->i_d.di_size == 0 || !S_ISREG(VFS_I(ip)->i_mode)); 27111da177e4SLinus Torvalds ASSERT(ip->i_d.di_nblocks == 0); 27121da177e4SLinus Torvalds 27131da177e4SLinus Torvalds /* 27141da177e4SLinus Torvalds * Pull the on-disk inode from the AGI unlinked list. 27151da177e4SLinus Torvalds */ 27161da177e4SLinus Torvalds error = xfs_iunlink_remove(tp, ip); 27171baaed8fSDave Chinner if (error) 27181da177e4SLinus Torvalds return error; 27191da177e4SLinus Torvalds 27200e0417f3SBrian Foster error = xfs_difree(tp, ip->i_ino, &xic); 27211baaed8fSDave Chinner if (error) 27221da177e4SLinus Torvalds return error; 27231baaed8fSDave Chinner 2724b2c20045SChristoph Hellwig /* 2725b2c20045SChristoph Hellwig * Free any local-format data sitting around before we reset the 2726b2c20045SChristoph Hellwig * data fork to extents format. Note that the attr fork data has 2727b2c20045SChristoph Hellwig * already been freed by xfs_attr_inactive. 2728b2c20045SChristoph Hellwig */ 2729f7e67b20SChristoph Hellwig if (ip->i_df.if_format == XFS_DINODE_FMT_LOCAL) { 2730b2c20045SChristoph Hellwig kmem_free(ip->i_df.if_u1.if_data); 2731b2c20045SChristoph Hellwig ip->i_df.if_u1.if_data = NULL; 2732b2c20045SChristoph Hellwig ip->i_df.if_bytes = 0; 2733b2c20045SChristoph Hellwig } 273498c4f78dSDarrick J. Wong 2735c19b3b05SDave Chinner VFS_I(ip)->i_mode = 0; /* mark incore inode as free */ 27361da177e4SLinus Torvalds ip->i_d.di_flags = 0; 2737beaae8cdSDarrick J. Wong ip->i_d.di_flags2 = 0; 27381da177e4SLinus Torvalds ip->i_d.di_dmevmask = 0; 27391da177e4SLinus Torvalds ip->i_d.di_forkoff = 0; /* mark the attr fork not in use */ 2740f7e67b20SChristoph Hellwig ip->i_df.if_format = XFS_DINODE_FMT_EXTENTS; 2741dc1baa71SEric Sandeen 2742dc1baa71SEric Sandeen /* Don't attempt to replay owner changes for a deleted inode */ 27431319ebefSDave Chinner spin_lock(&iip->ili_lock); 27441319ebefSDave Chinner iip->ili_fields &= ~(XFS_ILOG_AOWNER | XFS_ILOG_DOWNER); 27451319ebefSDave Chinner spin_unlock(&iip->ili_lock); 2746dc1baa71SEric Sandeen 27471da177e4SLinus Torvalds /* 27481da177e4SLinus Torvalds * Bump the generation count so no one will be confused 27491da177e4SLinus Torvalds * by reincarnations of this inode. 27501da177e4SLinus Torvalds */ 27519e9a2674SDave Chinner VFS_I(ip)->i_generation++; 27521da177e4SLinus Torvalds xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE); 27531da177e4SLinus Torvalds 275409b56604SBrian Foster if (xic.deleted) 275509b56604SBrian Foster error = xfs_ifree_cluster(ip, tp, &xic); 27561da177e4SLinus Torvalds 27572a30f36dSChandra Seetharaman return error; 27581da177e4SLinus Torvalds } 27591da177e4SLinus Torvalds 27601da177e4SLinus Torvalds /* 276160ec6783SChristoph Hellwig * This is called to unpin an inode. The caller must have the inode locked 276260ec6783SChristoph Hellwig * in at least shared mode so that the buffer cannot be subsequently pinned 276360ec6783SChristoph Hellwig * once someone is waiting for it to be unpinned. 27641da177e4SLinus Torvalds */ 276560ec6783SChristoph Hellwig static void 2766f392e631SChristoph Hellwig xfs_iunpin( 276760ec6783SChristoph Hellwig struct xfs_inode *ip) 2768a3f74ffbSDavid Chinner { 2769579aa9caSChristoph Hellwig ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL|XFS_ILOCK_SHARED)); 2770a3f74ffbSDavid Chinner 27714aaf15d1SDave Chinner trace_xfs_inode_unpin_nowait(ip, _RET_IP_); 27724aaf15d1SDave Chinner 2773a3f74ffbSDavid Chinner /* Give the log a push to start the unpinning I/O */ 2774656de4ffSChristoph Hellwig xfs_log_force_lsn(ip->i_mount, ip->i_itemp->ili_last_lsn, 0, NULL); 2775a14a348bSChristoph Hellwig 2776a3f74ffbSDavid Chinner } 2777a3f74ffbSDavid Chinner 2778f392e631SChristoph Hellwig static void 2779f392e631SChristoph Hellwig __xfs_iunpin_wait( 2780f392e631SChristoph Hellwig struct xfs_inode *ip) 2781f392e631SChristoph Hellwig { 2782f392e631SChristoph Hellwig wait_queue_head_t *wq = bit_waitqueue(&ip->i_flags, __XFS_IPINNED_BIT); 2783f392e631SChristoph Hellwig DEFINE_WAIT_BIT(wait, &ip->i_flags, __XFS_IPINNED_BIT); 2784f392e631SChristoph Hellwig 2785f392e631SChristoph Hellwig xfs_iunpin(ip); 2786f392e631SChristoph Hellwig 2787f392e631SChristoph Hellwig do { 278821417136SIngo Molnar prepare_to_wait(wq, &wait.wq_entry, TASK_UNINTERRUPTIBLE); 2789f392e631SChristoph Hellwig if (xfs_ipincount(ip)) 2790f392e631SChristoph Hellwig io_schedule(); 2791f392e631SChristoph Hellwig } while (xfs_ipincount(ip)); 279221417136SIngo Molnar finish_wait(wq, &wait.wq_entry); 2793f392e631SChristoph Hellwig } 2794f392e631SChristoph Hellwig 2795777df5afSDave Chinner void 27961da177e4SLinus Torvalds xfs_iunpin_wait( 279760ec6783SChristoph Hellwig struct xfs_inode *ip) 27981da177e4SLinus Torvalds { 2799f392e631SChristoph Hellwig if (xfs_ipincount(ip)) 2800f392e631SChristoph Hellwig __xfs_iunpin_wait(ip); 28011da177e4SLinus Torvalds } 28021da177e4SLinus Torvalds 280327320369SDave Chinner /* 280427320369SDave Chinner * Removing an inode from the namespace involves removing the directory entry 280527320369SDave Chinner * and dropping the link count on the inode. Removing the directory entry can 280627320369SDave Chinner * result in locking an AGF (directory blocks were freed) and removing a link 280727320369SDave Chinner * count can result in placing the inode on an unlinked list which results in 280827320369SDave Chinner * locking an AGI. 280927320369SDave Chinner * 281027320369SDave Chinner * The big problem here is that we have an ordering constraint on AGF and AGI 281127320369SDave Chinner * locking - inode allocation locks the AGI, then can allocate a new extent for 281227320369SDave Chinner * new inodes, locking the AGF after the AGI. Similarly, freeing the inode 281327320369SDave Chinner * removes the inode from the unlinked list, requiring that we lock the AGI 281427320369SDave Chinner * first, and then freeing the inode can result in an inode chunk being freed 281527320369SDave Chinner * and hence freeing disk space requiring that we lock an AGF. 281627320369SDave Chinner * 281727320369SDave Chinner * Hence the ordering that is imposed by other parts of the code is AGI before 281827320369SDave Chinner * AGF. This means we cannot remove the directory entry before we drop the inode 281927320369SDave Chinner * reference count and put it on the unlinked list as this results in a lock 282027320369SDave Chinner * order of AGF then AGI, and this can deadlock against inode allocation and 282127320369SDave Chinner * freeing. Therefore we must drop the link counts before we remove the 282227320369SDave Chinner * directory entry. 282327320369SDave Chinner * 282427320369SDave Chinner * This is still safe from a transactional point of view - it is not until we 2825310a75a3SDarrick J. Wong * get to xfs_defer_finish() that we have the possibility of multiple 282627320369SDave Chinner * transactions in this operation. Hence as long as we remove the directory 282727320369SDave Chinner * entry and drop the link count in the first transaction of the remove 282827320369SDave Chinner * operation, there are no transactional constraints on the ordering here. 282927320369SDave Chinner */ 2830c24b5dfaSDave Chinner int 2831c24b5dfaSDave Chinner xfs_remove( 2832c24b5dfaSDave Chinner xfs_inode_t *dp, 2833c24b5dfaSDave Chinner struct xfs_name *name, 2834c24b5dfaSDave Chinner xfs_inode_t *ip) 2835c24b5dfaSDave Chinner { 2836c24b5dfaSDave Chinner xfs_mount_t *mp = dp->i_mount; 2837c24b5dfaSDave Chinner xfs_trans_t *tp = NULL; 2838c19b3b05SDave Chinner int is_dir = S_ISDIR(VFS_I(ip)->i_mode); 2839c24b5dfaSDave Chinner int error = 0; 2840c24b5dfaSDave Chinner uint resblks; 2841c24b5dfaSDave Chinner 2842c24b5dfaSDave Chinner trace_xfs_remove(dp, name); 2843c24b5dfaSDave Chinner 2844c24b5dfaSDave Chinner if (XFS_FORCED_SHUTDOWN(mp)) 28452451337dSDave Chinner return -EIO; 2846c24b5dfaSDave Chinner 2847c14cfccaSDarrick J. Wong error = xfs_qm_dqattach(dp); 2848c24b5dfaSDave Chinner if (error) 2849c24b5dfaSDave Chinner goto std_return; 2850c24b5dfaSDave Chinner 2851c14cfccaSDarrick J. Wong error = xfs_qm_dqattach(ip); 2852c24b5dfaSDave Chinner if (error) 2853c24b5dfaSDave Chinner goto std_return; 2854c24b5dfaSDave Chinner 2855c24b5dfaSDave Chinner /* 2856c24b5dfaSDave Chinner * We try to get the real space reservation first, 2857c24b5dfaSDave Chinner * allowing for directory btree deletion(s) implying 2858c24b5dfaSDave Chinner * possible bmap insert(s). If we can't get the space 2859c24b5dfaSDave Chinner * reservation then we use 0 instead, and avoid the bmap 2860c24b5dfaSDave Chinner * btree insert(s) in the directory code by, if the bmap 2861c24b5dfaSDave Chinner * insert tries to happen, instead trimming the LAST 2862c24b5dfaSDave Chinner * block from the directory. 2863c24b5dfaSDave Chinner */ 2864c24b5dfaSDave Chinner resblks = XFS_REMOVE_SPACE_RES(mp); 2865253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_remove, resblks, 0, 0, &tp); 28662451337dSDave Chinner if (error == -ENOSPC) { 2867c24b5dfaSDave Chinner resblks = 0; 2868253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_remove, 0, 0, 0, 2869253f4911SChristoph Hellwig &tp); 2870c24b5dfaSDave Chinner } 2871c24b5dfaSDave Chinner if (error) { 28722451337dSDave Chinner ASSERT(error != -ENOSPC); 2873253f4911SChristoph Hellwig goto std_return; 2874c24b5dfaSDave Chinner } 2875c24b5dfaSDave Chinner 28767c2d238aSDarrick J. Wong xfs_lock_two_inodes(dp, XFS_ILOCK_EXCL, ip, XFS_ILOCK_EXCL); 2877c24b5dfaSDave Chinner 287865523218SChristoph Hellwig xfs_trans_ijoin(tp, dp, XFS_ILOCK_EXCL); 2879c24b5dfaSDave Chinner xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL); 2880c24b5dfaSDave Chinner 2881c24b5dfaSDave Chinner /* 2882c24b5dfaSDave Chinner * If we're removing a directory perform some additional validation. 2883c24b5dfaSDave Chinner */ 2884c24b5dfaSDave Chinner if (is_dir) { 288554d7b5c1SDave Chinner ASSERT(VFS_I(ip)->i_nlink >= 2); 288654d7b5c1SDave Chinner if (VFS_I(ip)->i_nlink != 2) { 28872451337dSDave Chinner error = -ENOTEMPTY; 2888c24b5dfaSDave Chinner goto out_trans_cancel; 2889c24b5dfaSDave Chinner } 2890c24b5dfaSDave Chinner if (!xfs_dir_isempty(ip)) { 28912451337dSDave Chinner error = -ENOTEMPTY; 2892c24b5dfaSDave Chinner goto out_trans_cancel; 2893c24b5dfaSDave Chinner } 2894c24b5dfaSDave Chinner 289527320369SDave Chinner /* Drop the link from ip's "..". */ 2896c24b5dfaSDave Chinner error = xfs_droplink(tp, dp); 2897c24b5dfaSDave Chinner if (error) 289827320369SDave Chinner goto out_trans_cancel; 2899c24b5dfaSDave Chinner 290027320369SDave Chinner /* Drop the "." link from ip to self. */ 2901c24b5dfaSDave Chinner error = xfs_droplink(tp, ip); 2902c24b5dfaSDave Chinner if (error) 290327320369SDave Chinner goto out_trans_cancel; 2904c24b5dfaSDave Chinner } else { 2905c24b5dfaSDave Chinner /* 2906c24b5dfaSDave Chinner * When removing a non-directory we need to log the parent 2907c24b5dfaSDave Chinner * inode here. For a directory this is done implicitly 2908c24b5dfaSDave Chinner * by the xfs_droplink call for the ".." entry. 2909c24b5dfaSDave Chinner */ 2910c24b5dfaSDave Chinner xfs_trans_log_inode(tp, dp, XFS_ILOG_CORE); 2911c24b5dfaSDave Chinner } 291227320369SDave Chinner xfs_trans_ichgtime(tp, dp, XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG); 2913c24b5dfaSDave Chinner 291427320369SDave Chinner /* Drop the link from dp to ip. */ 2915c24b5dfaSDave Chinner error = xfs_droplink(tp, ip); 2916c24b5dfaSDave Chinner if (error) 291727320369SDave Chinner goto out_trans_cancel; 2918c24b5dfaSDave Chinner 2919381eee69SBrian Foster error = xfs_dir_removename(tp, dp, name, ip->i_ino, resblks); 292027320369SDave Chinner if (error) { 29212451337dSDave Chinner ASSERT(error != -ENOENT); 2922c8eac49eSBrian Foster goto out_trans_cancel; 292327320369SDave Chinner } 292427320369SDave Chinner 2925c24b5dfaSDave Chinner /* 2926c24b5dfaSDave Chinner * If this is a synchronous mount, make sure that the 2927c24b5dfaSDave Chinner * remove transaction goes to disk before returning to 2928c24b5dfaSDave Chinner * the user. 2929c24b5dfaSDave Chinner */ 2930c24b5dfaSDave Chinner if (mp->m_flags & (XFS_MOUNT_WSYNC|XFS_MOUNT_DIRSYNC)) 2931c24b5dfaSDave Chinner xfs_trans_set_sync(tp); 2932c24b5dfaSDave Chinner 293370393313SChristoph Hellwig error = xfs_trans_commit(tp); 2934c24b5dfaSDave Chinner if (error) 2935c24b5dfaSDave Chinner goto std_return; 2936c24b5dfaSDave Chinner 29372cd2ef6aSChristoph Hellwig if (is_dir && xfs_inode_is_filestream(ip)) 2938c24b5dfaSDave Chinner xfs_filestream_deassociate(ip); 2939c24b5dfaSDave Chinner 2940c24b5dfaSDave Chinner return 0; 2941c24b5dfaSDave Chinner 2942c24b5dfaSDave Chinner out_trans_cancel: 29434906e215SChristoph Hellwig xfs_trans_cancel(tp); 2944c24b5dfaSDave Chinner std_return: 2945c24b5dfaSDave Chinner return error; 2946c24b5dfaSDave Chinner } 2947c24b5dfaSDave Chinner 2948f6bba201SDave Chinner /* 2949f6bba201SDave Chinner * Enter all inodes for a rename transaction into a sorted array. 2950f6bba201SDave Chinner */ 295195afcf5cSDave Chinner #define __XFS_SORT_INODES 5 2952f6bba201SDave Chinner STATIC void 2953f6bba201SDave Chinner xfs_sort_for_rename( 295495afcf5cSDave Chinner struct xfs_inode *dp1, /* in: old (source) directory inode */ 295595afcf5cSDave Chinner struct xfs_inode *dp2, /* in: new (target) directory inode */ 295695afcf5cSDave Chinner struct xfs_inode *ip1, /* in: inode of old entry */ 295795afcf5cSDave Chinner struct xfs_inode *ip2, /* in: inode of new entry */ 295895afcf5cSDave Chinner struct xfs_inode *wip, /* in: whiteout inode */ 295995afcf5cSDave Chinner struct xfs_inode **i_tab,/* out: sorted array of inodes */ 296095afcf5cSDave Chinner int *num_inodes) /* in/out: inodes in array */ 2961f6bba201SDave Chinner { 2962f6bba201SDave Chinner int i, j; 2963f6bba201SDave Chinner 296495afcf5cSDave Chinner ASSERT(*num_inodes == __XFS_SORT_INODES); 296595afcf5cSDave Chinner memset(i_tab, 0, *num_inodes * sizeof(struct xfs_inode *)); 296695afcf5cSDave Chinner 2967f6bba201SDave Chinner /* 2968f6bba201SDave Chinner * i_tab contains a list of pointers to inodes. We initialize 2969f6bba201SDave Chinner * the table here & we'll sort it. We will then use it to 2970f6bba201SDave Chinner * order the acquisition of the inode locks. 2971f6bba201SDave Chinner * 2972f6bba201SDave Chinner * Note that the table may contain duplicates. e.g., dp1 == dp2. 2973f6bba201SDave Chinner */ 297495afcf5cSDave Chinner i = 0; 297595afcf5cSDave Chinner i_tab[i++] = dp1; 297695afcf5cSDave Chinner i_tab[i++] = dp2; 297795afcf5cSDave Chinner i_tab[i++] = ip1; 297895afcf5cSDave Chinner if (ip2) 297995afcf5cSDave Chinner i_tab[i++] = ip2; 298095afcf5cSDave Chinner if (wip) 298195afcf5cSDave Chinner i_tab[i++] = wip; 298295afcf5cSDave Chinner *num_inodes = i; 2983f6bba201SDave Chinner 2984f6bba201SDave Chinner /* 2985f6bba201SDave Chinner * Sort the elements via bubble sort. (Remember, there are at 298695afcf5cSDave Chinner * most 5 elements to sort, so this is adequate.) 2987f6bba201SDave Chinner */ 2988f6bba201SDave Chinner for (i = 0; i < *num_inodes; i++) { 2989f6bba201SDave Chinner for (j = 1; j < *num_inodes; j++) { 2990f6bba201SDave Chinner if (i_tab[j]->i_ino < i_tab[j-1]->i_ino) { 299195afcf5cSDave Chinner struct xfs_inode *temp = i_tab[j]; 2992f6bba201SDave Chinner i_tab[j] = i_tab[j-1]; 2993f6bba201SDave Chinner i_tab[j-1] = temp; 2994f6bba201SDave Chinner } 2995f6bba201SDave Chinner } 2996f6bba201SDave Chinner } 2997f6bba201SDave Chinner } 2998f6bba201SDave Chinner 2999310606b0SDave Chinner static int 3000310606b0SDave Chinner xfs_finish_rename( 3001c9cfdb38SBrian Foster struct xfs_trans *tp) 3002310606b0SDave Chinner { 3003310606b0SDave Chinner /* 3004310606b0SDave Chinner * If this is a synchronous mount, make sure that the rename transaction 3005310606b0SDave Chinner * goes to disk before returning to the user. 3006310606b0SDave Chinner */ 3007310606b0SDave Chinner if (tp->t_mountp->m_flags & (XFS_MOUNT_WSYNC|XFS_MOUNT_DIRSYNC)) 3008310606b0SDave Chinner xfs_trans_set_sync(tp); 3009310606b0SDave Chinner 301070393313SChristoph Hellwig return xfs_trans_commit(tp); 3011310606b0SDave Chinner } 3012310606b0SDave Chinner 3013f6bba201SDave Chinner /* 3014d31a1825SCarlos Maiolino * xfs_cross_rename() 3015d31a1825SCarlos Maiolino * 3016d31a1825SCarlos Maiolino * responsible for handling RENAME_EXCHANGE flag in renameat2() sytemcall 3017d31a1825SCarlos Maiolino */ 3018d31a1825SCarlos Maiolino STATIC int 3019d31a1825SCarlos Maiolino xfs_cross_rename( 3020d31a1825SCarlos Maiolino struct xfs_trans *tp, 3021d31a1825SCarlos Maiolino struct xfs_inode *dp1, 3022d31a1825SCarlos Maiolino struct xfs_name *name1, 3023d31a1825SCarlos Maiolino struct xfs_inode *ip1, 3024d31a1825SCarlos Maiolino struct xfs_inode *dp2, 3025d31a1825SCarlos Maiolino struct xfs_name *name2, 3026d31a1825SCarlos Maiolino struct xfs_inode *ip2, 3027d31a1825SCarlos Maiolino int spaceres) 3028d31a1825SCarlos Maiolino { 3029d31a1825SCarlos Maiolino int error = 0; 3030d31a1825SCarlos Maiolino int ip1_flags = 0; 3031d31a1825SCarlos Maiolino int ip2_flags = 0; 3032d31a1825SCarlos Maiolino int dp2_flags = 0; 3033d31a1825SCarlos Maiolino 3034d31a1825SCarlos Maiolino /* Swap inode number for dirent in first parent */ 3035381eee69SBrian Foster error = xfs_dir_replace(tp, dp1, name1, ip2->i_ino, spaceres); 3036d31a1825SCarlos Maiolino if (error) 3037eeacd321SDave Chinner goto out_trans_abort; 3038d31a1825SCarlos Maiolino 3039d31a1825SCarlos Maiolino /* Swap inode number for dirent in second parent */ 3040381eee69SBrian Foster error = xfs_dir_replace(tp, dp2, name2, ip1->i_ino, spaceres); 3041d31a1825SCarlos Maiolino if (error) 3042eeacd321SDave Chinner goto out_trans_abort; 3043d31a1825SCarlos Maiolino 3044d31a1825SCarlos Maiolino /* 3045d31a1825SCarlos Maiolino * If we're renaming one or more directories across different parents, 3046d31a1825SCarlos Maiolino * update the respective ".." entries (and link counts) to match the new 3047d31a1825SCarlos Maiolino * parents. 3048d31a1825SCarlos Maiolino */ 3049d31a1825SCarlos Maiolino if (dp1 != dp2) { 3050d31a1825SCarlos Maiolino dp2_flags = XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG; 3051d31a1825SCarlos Maiolino 3052c19b3b05SDave Chinner if (S_ISDIR(VFS_I(ip2)->i_mode)) { 3053d31a1825SCarlos Maiolino error = xfs_dir_replace(tp, ip2, &xfs_name_dotdot, 3054381eee69SBrian Foster dp1->i_ino, spaceres); 3055d31a1825SCarlos Maiolino if (error) 3056eeacd321SDave Chinner goto out_trans_abort; 3057d31a1825SCarlos Maiolino 3058d31a1825SCarlos Maiolino /* transfer ip2 ".." reference to dp1 */ 3059c19b3b05SDave Chinner if (!S_ISDIR(VFS_I(ip1)->i_mode)) { 3060d31a1825SCarlos Maiolino error = xfs_droplink(tp, dp2); 3061d31a1825SCarlos Maiolino if (error) 3062eeacd321SDave Chinner goto out_trans_abort; 306391083269SEric Sandeen xfs_bumplink(tp, dp1); 3064d31a1825SCarlos Maiolino } 3065d31a1825SCarlos Maiolino 3066d31a1825SCarlos Maiolino /* 3067d31a1825SCarlos Maiolino * Although ip1 isn't changed here, userspace needs 3068d31a1825SCarlos Maiolino * to be warned about the change, so that applications 3069d31a1825SCarlos Maiolino * relying on it (like backup ones), will properly 3070d31a1825SCarlos Maiolino * notify the change 3071d31a1825SCarlos Maiolino */ 3072d31a1825SCarlos Maiolino ip1_flags |= XFS_ICHGTIME_CHG; 3073d31a1825SCarlos Maiolino ip2_flags |= XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG; 3074d31a1825SCarlos Maiolino } 3075d31a1825SCarlos Maiolino 3076c19b3b05SDave Chinner if (S_ISDIR(VFS_I(ip1)->i_mode)) { 3077d31a1825SCarlos Maiolino error = xfs_dir_replace(tp, ip1, &xfs_name_dotdot, 3078381eee69SBrian Foster dp2->i_ino, spaceres); 3079d31a1825SCarlos Maiolino if (error) 3080eeacd321SDave Chinner goto out_trans_abort; 3081d31a1825SCarlos Maiolino 3082d31a1825SCarlos Maiolino /* transfer ip1 ".." reference to dp2 */ 3083c19b3b05SDave Chinner if (!S_ISDIR(VFS_I(ip2)->i_mode)) { 3084d31a1825SCarlos Maiolino error = xfs_droplink(tp, dp1); 3085d31a1825SCarlos Maiolino if (error) 3086eeacd321SDave Chinner goto out_trans_abort; 308791083269SEric Sandeen xfs_bumplink(tp, dp2); 3088d31a1825SCarlos Maiolino } 3089d31a1825SCarlos Maiolino 3090d31a1825SCarlos Maiolino /* 3091d31a1825SCarlos Maiolino * Although ip2 isn't changed here, userspace needs 3092d31a1825SCarlos Maiolino * to be warned about the change, so that applications 3093d31a1825SCarlos Maiolino * relying on it (like backup ones), will properly 3094d31a1825SCarlos Maiolino * notify the change 3095d31a1825SCarlos Maiolino */ 3096d31a1825SCarlos Maiolino ip1_flags |= XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG; 3097d31a1825SCarlos Maiolino ip2_flags |= XFS_ICHGTIME_CHG; 3098d31a1825SCarlos Maiolino } 3099d31a1825SCarlos Maiolino } 3100d31a1825SCarlos Maiolino 3101d31a1825SCarlos Maiolino if (ip1_flags) { 3102d31a1825SCarlos Maiolino xfs_trans_ichgtime(tp, ip1, ip1_flags); 3103d31a1825SCarlos Maiolino xfs_trans_log_inode(tp, ip1, XFS_ILOG_CORE); 3104d31a1825SCarlos Maiolino } 3105d31a1825SCarlos Maiolino if (ip2_flags) { 3106d31a1825SCarlos Maiolino xfs_trans_ichgtime(tp, ip2, ip2_flags); 3107d31a1825SCarlos Maiolino xfs_trans_log_inode(tp, ip2, XFS_ILOG_CORE); 3108d31a1825SCarlos Maiolino } 3109d31a1825SCarlos Maiolino if (dp2_flags) { 3110d31a1825SCarlos Maiolino xfs_trans_ichgtime(tp, dp2, dp2_flags); 3111d31a1825SCarlos Maiolino xfs_trans_log_inode(tp, dp2, XFS_ILOG_CORE); 3112d31a1825SCarlos Maiolino } 3113d31a1825SCarlos Maiolino xfs_trans_ichgtime(tp, dp1, XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG); 3114d31a1825SCarlos Maiolino xfs_trans_log_inode(tp, dp1, XFS_ILOG_CORE); 3115c9cfdb38SBrian Foster return xfs_finish_rename(tp); 3116eeacd321SDave Chinner 3117eeacd321SDave Chinner out_trans_abort: 31184906e215SChristoph Hellwig xfs_trans_cancel(tp); 3119d31a1825SCarlos Maiolino return error; 3120d31a1825SCarlos Maiolino } 3121d31a1825SCarlos Maiolino 3122d31a1825SCarlos Maiolino /* 31237dcf5c3eSDave Chinner * xfs_rename_alloc_whiteout() 31247dcf5c3eSDave Chinner * 31257dcf5c3eSDave Chinner * Return a referenced, unlinked, unlocked inode that that can be used as a 31267dcf5c3eSDave Chinner * whiteout in a rename transaction. We use a tmpfile inode here so that if we 31277dcf5c3eSDave Chinner * crash between allocating the inode and linking it into the rename transaction 31287dcf5c3eSDave Chinner * recovery will free the inode and we won't leak it. 31297dcf5c3eSDave Chinner */ 31307dcf5c3eSDave Chinner static int 31317dcf5c3eSDave Chinner xfs_rename_alloc_whiteout( 31327dcf5c3eSDave Chinner struct xfs_inode *dp, 31337dcf5c3eSDave Chinner struct xfs_inode **wip) 31347dcf5c3eSDave Chinner { 31357dcf5c3eSDave Chinner struct xfs_inode *tmpfile; 31367dcf5c3eSDave Chinner int error; 31377dcf5c3eSDave Chinner 3138a1f69417SEric Sandeen error = xfs_create_tmpfile(dp, S_IFCHR | WHITEOUT_MODE, &tmpfile); 31397dcf5c3eSDave Chinner if (error) 31407dcf5c3eSDave Chinner return error; 31417dcf5c3eSDave Chinner 314222419ac9SBrian Foster /* 314322419ac9SBrian Foster * Prepare the tmpfile inode as if it were created through the VFS. 3144c4a6bf7fSDarrick J. Wong * Complete the inode setup and flag it as linkable. nlink is already 3145c4a6bf7fSDarrick J. Wong * zero, so we can skip the drop_nlink. 314622419ac9SBrian Foster */ 31472b3d1d41SChristoph Hellwig xfs_setup_iops(tmpfile); 31487dcf5c3eSDave Chinner xfs_finish_inode_setup(tmpfile); 31497dcf5c3eSDave Chinner VFS_I(tmpfile)->i_state |= I_LINKABLE; 31507dcf5c3eSDave Chinner 31517dcf5c3eSDave Chinner *wip = tmpfile; 31527dcf5c3eSDave Chinner return 0; 31537dcf5c3eSDave Chinner } 31547dcf5c3eSDave Chinner 31557dcf5c3eSDave Chinner /* 3156f6bba201SDave Chinner * xfs_rename 3157f6bba201SDave Chinner */ 3158f6bba201SDave Chinner int 3159f6bba201SDave Chinner xfs_rename( 31607dcf5c3eSDave Chinner struct xfs_inode *src_dp, 3161f6bba201SDave Chinner struct xfs_name *src_name, 31627dcf5c3eSDave Chinner struct xfs_inode *src_ip, 31637dcf5c3eSDave Chinner struct xfs_inode *target_dp, 3164f6bba201SDave Chinner struct xfs_name *target_name, 31657dcf5c3eSDave Chinner struct xfs_inode *target_ip, 3166d31a1825SCarlos Maiolino unsigned int flags) 3167f6bba201SDave Chinner { 31687dcf5c3eSDave Chinner struct xfs_mount *mp = src_dp->i_mount; 31697dcf5c3eSDave Chinner struct xfs_trans *tp; 31707dcf5c3eSDave Chinner struct xfs_inode *wip = NULL; /* whiteout inode */ 31717dcf5c3eSDave Chinner struct xfs_inode *inodes[__XFS_SORT_INODES]; 317293597ae8Skaixuxia struct xfs_buf *agibp; 317395afcf5cSDave Chinner int num_inodes = __XFS_SORT_INODES; 31742b93681fSDave Chinner bool new_parent = (src_dp != target_dp); 3175c19b3b05SDave Chinner bool src_is_directory = S_ISDIR(VFS_I(src_ip)->i_mode); 3176f6bba201SDave Chinner int spaceres; 31777dcf5c3eSDave Chinner int error; 3178f6bba201SDave Chinner 3179f6bba201SDave Chinner trace_xfs_rename(src_dp, target_dp, src_name, target_name); 3180f6bba201SDave Chinner 3181eeacd321SDave Chinner if ((flags & RENAME_EXCHANGE) && !target_ip) 3182eeacd321SDave Chinner return -EINVAL; 3183f6bba201SDave Chinner 31847dcf5c3eSDave Chinner /* 31857dcf5c3eSDave Chinner * If we are doing a whiteout operation, allocate the whiteout inode 31867dcf5c3eSDave Chinner * we will be placing at the target and ensure the type is set 31877dcf5c3eSDave Chinner * appropriately. 31887dcf5c3eSDave Chinner */ 31897dcf5c3eSDave Chinner if (flags & RENAME_WHITEOUT) { 31907dcf5c3eSDave Chinner ASSERT(!(flags & (RENAME_NOREPLACE | RENAME_EXCHANGE))); 31917dcf5c3eSDave Chinner error = xfs_rename_alloc_whiteout(target_dp, &wip); 31927dcf5c3eSDave Chinner if (error) 31937dcf5c3eSDave Chinner return error; 3194f6bba201SDave Chinner 31957dcf5c3eSDave Chinner /* setup target dirent info as whiteout */ 31967dcf5c3eSDave Chinner src_name->type = XFS_DIR3_FT_CHRDEV; 31977dcf5c3eSDave Chinner } 31987dcf5c3eSDave Chinner 31997dcf5c3eSDave Chinner xfs_sort_for_rename(src_dp, target_dp, src_ip, target_ip, wip, 3200f6bba201SDave Chinner inodes, &num_inodes); 3201f6bba201SDave Chinner 3202f6bba201SDave Chinner spaceres = XFS_RENAME_SPACE_RES(mp, target_name->len); 3203253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_rename, spaceres, 0, 0, &tp); 32042451337dSDave Chinner if (error == -ENOSPC) { 3205f6bba201SDave Chinner spaceres = 0; 3206253f4911SChristoph Hellwig error = xfs_trans_alloc(mp, &M_RES(mp)->tr_rename, 0, 0, 0, 3207253f4911SChristoph Hellwig &tp); 3208f6bba201SDave Chinner } 3209445883e8SDave Chinner if (error) 3210253f4911SChristoph Hellwig goto out_release_wip; 3211f6bba201SDave Chinner 3212f6bba201SDave Chinner /* 3213f6bba201SDave Chinner * Attach the dquots to the inodes 3214f6bba201SDave Chinner */ 3215f6bba201SDave Chinner error = xfs_qm_vop_rename_dqattach(inodes); 3216445883e8SDave Chinner if (error) 3217445883e8SDave Chinner goto out_trans_cancel; 3218f6bba201SDave Chinner 3219f6bba201SDave Chinner /* 3220f6bba201SDave Chinner * Lock all the participating inodes. Depending upon whether 3221f6bba201SDave Chinner * the target_name exists in the target directory, and 3222f6bba201SDave Chinner * whether the target directory is the same as the source 3223f6bba201SDave Chinner * directory, we can lock from 2 to 4 inodes. 3224f6bba201SDave Chinner */ 3225f6bba201SDave Chinner xfs_lock_inodes(inodes, num_inodes, XFS_ILOCK_EXCL); 3226f6bba201SDave Chinner 3227f6bba201SDave Chinner /* 3228f6bba201SDave Chinner * Join all the inodes to the transaction. From this point on, 3229f6bba201SDave Chinner * we can rely on either trans_commit or trans_cancel to unlock 3230f6bba201SDave Chinner * them. 3231f6bba201SDave Chinner */ 323265523218SChristoph Hellwig xfs_trans_ijoin(tp, src_dp, XFS_ILOCK_EXCL); 3233f6bba201SDave Chinner if (new_parent) 323465523218SChristoph Hellwig xfs_trans_ijoin(tp, target_dp, XFS_ILOCK_EXCL); 3235f6bba201SDave Chinner xfs_trans_ijoin(tp, src_ip, XFS_ILOCK_EXCL); 3236f6bba201SDave Chinner if (target_ip) 3237f6bba201SDave Chinner xfs_trans_ijoin(tp, target_ip, XFS_ILOCK_EXCL); 32387dcf5c3eSDave Chinner if (wip) 32397dcf5c3eSDave Chinner xfs_trans_ijoin(tp, wip, XFS_ILOCK_EXCL); 3240f6bba201SDave Chinner 3241f6bba201SDave Chinner /* 3242f6bba201SDave Chinner * If we are using project inheritance, we only allow renames 3243f6bba201SDave Chinner * into our tree when the project IDs are the same; else the 3244f6bba201SDave Chinner * tree quota mechanism would be circumvented. 3245f6bba201SDave Chinner */ 3246f6bba201SDave Chinner if (unlikely((target_dp->i_d.di_flags & XFS_DIFLAG_PROJINHERIT) && 3247de7a866fSChristoph Hellwig target_dp->i_d.di_projid != src_ip->i_d.di_projid)) { 32482451337dSDave Chinner error = -EXDEV; 3249445883e8SDave Chinner goto out_trans_cancel; 3250f6bba201SDave Chinner } 3251f6bba201SDave Chinner 3252eeacd321SDave Chinner /* RENAME_EXCHANGE is unique from here on. */ 3253eeacd321SDave Chinner if (flags & RENAME_EXCHANGE) 3254eeacd321SDave Chinner return xfs_cross_rename(tp, src_dp, src_name, src_ip, 3255d31a1825SCarlos Maiolino target_dp, target_name, target_ip, 3256f16dea54SBrian Foster spaceres); 3257d31a1825SCarlos Maiolino 3258d31a1825SCarlos Maiolino /* 3259bc56ad8cSkaixuxia * Check for expected errors before we dirty the transaction 3260bc56ad8cSkaixuxia * so we can return an error without a transaction abort. 3261f6bba201SDave Chinner */ 3262f6bba201SDave Chinner if (target_ip == NULL) { 3263f6bba201SDave Chinner /* 3264f6bba201SDave Chinner * If there's no space reservation, check the entry will 3265f6bba201SDave Chinner * fit before actually inserting it. 3266f6bba201SDave Chinner */ 326794f3cad5SEric Sandeen if (!spaceres) { 326894f3cad5SEric Sandeen error = xfs_dir_canenter(tp, target_dp, target_name); 3269f6bba201SDave Chinner if (error) 3270445883e8SDave Chinner goto out_trans_cancel; 327194f3cad5SEric Sandeen } 3272bc56ad8cSkaixuxia } else { 3273bc56ad8cSkaixuxia /* 3274bc56ad8cSkaixuxia * If target exists and it's a directory, check that whether 3275bc56ad8cSkaixuxia * it can be destroyed. 3276bc56ad8cSkaixuxia */ 3277bc56ad8cSkaixuxia if (S_ISDIR(VFS_I(target_ip)->i_mode) && 3278bc56ad8cSkaixuxia (!xfs_dir_isempty(target_ip) || 3279bc56ad8cSkaixuxia (VFS_I(target_ip)->i_nlink > 2))) { 3280bc56ad8cSkaixuxia error = -EEXIST; 3281bc56ad8cSkaixuxia goto out_trans_cancel; 3282bc56ad8cSkaixuxia } 3283bc56ad8cSkaixuxia } 3284bc56ad8cSkaixuxia 3285bc56ad8cSkaixuxia /* 3286bc56ad8cSkaixuxia * Directory entry creation below may acquire the AGF. Remove 3287bc56ad8cSkaixuxia * the whiteout from the unlinked list first to preserve correct 3288bc56ad8cSkaixuxia * AGI/AGF locking order. This dirties the transaction so failures 3289bc56ad8cSkaixuxia * after this point will abort and log recovery will clean up the 3290bc56ad8cSkaixuxia * mess. 3291bc56ad8cSkaixuxia * 3292bc56ad8cSkaixuxia * For whiteouts, we need to bump the link count on the whiteout 3293bc56ad8cSkaixuxia * inode. After this point, we have a real link, clear the tmpfile 3294bc56ad8cSkaixuxia * state flag from the inode so it doesn't accidentally get misused 3295bc56ad8cSkaixuxia * in future. 3296bc56ad8cSkaixuxia */ 3297bc56ad8cSkaixuxia if (wip) { 3298bc56ad8cSkaixuxia ASSERT(VFS_I(wip)->i_nlink == 0); 3299bc56ad8cSkaixuxia error = xfs_iunlink_remove(tp, wip); 3300bc56ad8cSkaixuxia if (error) 3301bc56ad8cSkaixuxia goto out_trans_cancel; 3302bc56ad8cSkaixuxia 3303bc56ad8cSkaixuxia xfs_bumplink(tp, wip); 3304bc56ad8cSkaixuxia VFS_I(wip)->i_state &= ~I_LINKABLE; 3305bc56ad8cSkaixuxia } 3306bc56ad8cSkaixuxia 3307bc56ad8cSkaixuxia /* 3308bc56ad8cSkaixuxia * Set up the target. 3309bc56ad8cSkaixuxia */ 3310bc56ad8cSkaixuxia if (target_ip == NULL) { 3311f6bba201SDave Chinner /* 3312f6bba201SDave Chinner * If target does not exist and the rename crosses 3313f6bba201SDave Chinner * directories, adjust the target directory link count 3314f6bba201SDave Chinner * to account for the ".." reference from the new entry. 3315f6bba201SDave Chinner */ 3316f6bba201SDave Chinner error = xfs_dir_createname(tp, target_dp, target_name, 3317381eee69SBrian Foster src_ip->i_ino, spaceres); 3318f6bba201SDave Chinner if (error) 3319c8eac49eSBrian Foster goto out_trans_cancel; 3320f6bba201SDave Chinner 3321f6bba201SDave Chinner xfs_trans_ichgtime(tp, target_dp, 3322f6bba201SDave Chinner XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG); 3323f6bba201SDave Chinner 3324f6bba201SDave Chinner if (new_parent && src_is_directory) { 332591083269SEric Sandeen xfs_bumplink(tp, target_dp); 3326f6bba201SDave Chinner } 3327f6bba201SDave Chinner } else { /* target_ip != NULL */ 3328f6bba201SDave Chinner /* 3329f6bba201SDave Chinner * Link the source inode under the target name. 3330f6bba201SDave Chinner * If the source inode is a directory and we are moving 3331f6bba201SDave Chinner * it across directories, its ".." entry will be 3332f6bba201SDave Chinner * inconsistent until we replace that down below. 3333f6bba201SDave Chinner * 3334f6bba201SDave Chinner * In case there is already an entry with the same 3335f6bba201SDave Chinner * name at the destination directory, remove it first. 3336f6bba201SDave Chinner */ 333793597ae8Skaixuxia 333893597ae8Skaixuxia /* 333993597ae8Skaixuxia * Check whether the replace operation will need to allocate 334093597ae8Skaixuxia * blocks. This happens when the shortform directory lacks 334193597ae8Skaixuxia * space and we have to convert it to a block format directory. 334293597ae8Skaixuxia * When more blocks are necessary, we must lock the AGI first 334393597ae8Skaixuxia * to preserve locking order (AGI -> AGF). 334493597ae8Skaixuxia */ 334593597ae8Skaixuxia if (xfs_dir2_sf_replace_needblock(target_dp, src_ip->i_ino)) { 334693597ae8Skaixuxia error = xfs_read_agi(mp, tp, 334793597ae8Skaixuxia XFS_INO_TO_AGNO(mp, target_ip->i_ino), 334893597ae8Skaixuxia &agibp); 334993597ae8Skaixuxia if (error) 335093597ae8Skaixuxia goto out_trans_cancel; 335193597ae8Skaixuxia } 335293597ae8Skaixuxia 3353f6bba201SDave Chinner error = xfs_dir_replace(tp, target_dp, target_name, 3354381eee69SBrian Foster src_ip->i_ino, spaceres); 3355f6bba201SDave Chinner if (error) 3356c8eac49eSBrian Foster goto out_trans_cancel; 3357f6bba201SDave Chinner 3358f6bba201SDave Chinner xfs_trans_ichgtime(tp, target_dp, 3359f6bba201SDave Chinner XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG); 3360f6bba201SDave Chinner 3361f6bba201SDave Chinner /* 3362f6bba201SDave Chinner * Decrement the link count on the target since the target 3363f6bba201SDave Chinner * dir no longer points to it. 3364f6bba201SDave Chinner */ 3365f6bba201SDave Chinner error = xfs_droplink(tp, target_ip); 3366f6bba201SDave Chinner if (error) 3367c8eac49eSBrian Foster goto out_trans_cancel; 3368f6bba201SDave Chinner 3369f6bba201SDave Chinner if (src_is_directory) { 3370f6bba201SDave Chinner /* 3371f6bba201SDave Chinner * Drop the link from the old "." entry. 3372f6bba201SDave Chinner */ 3373f6bba201SDave Chinner error = xfs_droplink(tp, target_ip); 3374f6bba201SDave Chinner if (error) 3375c8eac49eSBrian Foster goto out_trans_cancel; 3376f6bba201SDave Chinner } 3377f6bba201SDave Chinner } /* target_ip != NULL */ 3378f6bba201SDave Chinner 3379f6bba201SDave Chinner /* 3380f6bba201SDave Chinner * Remove the source. 3381f6bba201SDave Chinner */ 3382f6bba201SDave Chinner if (new_parent && src_is_directory) { 3383f6bba201SDave Chinner /* 3384f6bba201SDave Chinner * Rewrite the ".." entry to point to the new 3385f6bba201SDave Chinner * directory. 3386f6bba201SDave Chinner */ 3387f6bba201SDave Chinner error = xfs_dir_replace(tp, src_ip, &xfs_name_dotdot, 3388381eee69SBrian Foster target_dp->i_ino, spaceres); 33892451337dSDave Chinner ASSERT(error != -EEXIST); 3390f6bba201SDave Chinner if (error) 3391c8eac49eSBrian Foster goto out_trans_cancel; 3392f6bba201SDave Chinner } 3393f6bba201SDave Chinner 3394f6bba201SDave Chinner /* 3395f6bba201SDave Chinner * We always want to hit the ctime on the source inode. 3396f6bba201SDave Chinner * 3397f6bba201SDave Chinner * This isn't strictly required by the standards since the source 3398f6bba201SDave Chinner * inode isn't really being changed, but old unix file systems did 3399f6bba201SDave Chinner * it and some incremental backup programs won't work without it. 3400f6bba201SDave Chinner */ 3401f6bba201SDave Chinner xfs_trans_ichgtime(tp, src_ip, XFS_ICHGTIME_CHG); 3402f6bba201SDave Chinner xfs_trans_log_inode(tp, src_ip, XFS_ILOG_CORE); 3403f6bba201SDave Chinner 3404f6bba201SDave Chinner /* 3405f6bba201SDave Chinner * Adjust the link count on src_dp. This is necessary when 3406f6bba201SDave Chinner * renaming a directory, either within one parent when 3407f6bba201SDave Chinner * the target existed, or across two parent directories. 3408f6bba201SDave Chinner */ 3409f6bba201SDave Chinner if (src_is_directory && (new_parent || target_ip != NULL)) { 3410f6bba201SDave Chinner 3411f6bba201SDave Chinner /* 3412f6bba201SDave Chinner * Decrement link count on src_directory since the 3413f6bba201SDave Chinner * entry that's moved no longer points to it. 3414f6bba201SDave Chinner */ 3415f6bba201SDave Chinner error = xfs_droplink(tp, src_dp); 3416f6bba201SDave Chinner if (error) 3417c8eac49eSBrian Foster goto out_trans_cancel; 3418f6bba201SDave Chinner } 3419f6bba201SDave Chinner 34207dcf5c3eSDave Chinner /* 34217dcf5c3eSDave Chinner * For whiteouts, we only need to update the source dirent with the 34227dcf5c3eSDave Chinner * inode number of the whiteout inode rather than removing it 34237dcf5c3eSDave Chinner * altogether. 34247dcf5c3eSDave Chinner */ 34257dcf5c3eSDave Chinner if (wip) { 34267dcf5c3eSDave Chinner error = xfs_dir_replace(tp, src_dp, src_name, wip->i_ino, 3427381eee69SBrian Foster spaceres); 34287dcf5c3eSDave Chinner } else 3429f6bba201SDave Chinner error = xfs_dir_removename(tp, src_dp, src_name, src_ip->i_ino, 3430381eee69SBrian Foster spaceres); 3431f6bba201SDave Chinner if (error) 3432c8eac49eSBrian Foster goto out_trans_cancel; 3433f6bba201SDave Chinner 3434f6bba201SDave Chinner xfs_trans_ichgtime(tp, src_dp, XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG); 3435f6bba201SDave Chinner xfs_trans_log_inode(tp, src_dp, XFS_ILOG_CORE); 3436f6bba201SDave Chinner if (new_parent) 3437f6bba201SDave Chinner xfs_trans_log_inode(tp, target_dp, XFS_ILOG_CORE); 3438f6bba201SDave Chinner 3439c9cfdb38SBrian Foster error = xfs_finish_rename(tp); 34407dcf5c3eSDave Chinner if (wip) 344144a8736bSDarrick J. Wong xfs_irele(wip); 34427dcf5c3eSDave Chinner return error; 3443f6bba201SDave Chinner 3444445883e8SDave Chinner out_trans_cancel: 34454906e215SChristoph Hellwig xfs_trans_cancel(tp); 3446253f4911SChristoph Hellwig out_release_wip: 34477dcf5c3eSDave Chinner if (wip) 344844a8736bSDarrick J. Wong xfs_irele(wip); 3449f6bba201SDave Chinner return error; 3450f6bba201SDave Chinner } 3451f6bba201SDave Chinner 3452e6187b34SDave Chinner static int 3453e6187b34SDave Chinner xfs_iflush( 345493848a99SChristoph Hellwig struct xfs_inode *ip, 345593848a99SChristoph Hellwig struct xfs_buf *bp) 34561da177e4SLinus Torvalds { 345793848a99SChristoph Hellwig struct xfs_inode_log_item *iip = ip->i_itemp; 345893848a99SChristoph Hellwig struct xfs_dinode *dip; 345993848a99SChristoph Hellwig struct xfs_mount *mp = ip->i_mount; 3460f2019299SBrian Foster int error; 34611da177e4SLinus Torvalds 3462579aa9caSChristoph Hellwig ASSERT(xfs_isilocked(ip, XFS_ILOCK_EXCL|XFS_ILOCK_SHARED)); 3463474fce06SChristoph Hellwig ASSERT(xfs_isiflocked(ip)); 3464f7e67b20SChristoph Hellwig ASSERT(ip->i_df.if_format != XFS_DINODE_FMT_BTREE || 3465daf83964SChristoph Hellwig ip->i_df.if_nextents > XFS_IFORK_MAXEXT(ip, XFS_DATA_FORK)); 346690c60e16SDave Chinner ASSERT(iip->ili_item.li_buf == bp); 34671da177e4SLinus Torvalds 346888ee2df7SChristoph Hellwig dip = xfs_buf_offset(bp, ip->i_imap.im_boffset); 34691da177e4SLinus Torvalds 3470f2019299SBrian Foster /* 3471f2019299SBrian Foster * We don't flush the inode if any of the following checks fail, but we 3472f2019299SBrian Foster * do still update the log item and attach to the backing buffer as if 3473f2019299SBrian Foster * the flush happened. This is a formality to facilitate predictable 3474f2019299SBrian Foster * error handling as the caller will shutdown and fail the buffer. 3475f2019299SBrian Foster */ 3476f2019299SBrian Foster error = -EFSCORRUPTED; 347769ef921bSChristoph Hellwig if (XFS_TEST_ERROR(dip->di_magic != cpu_to_be16(XFS_DINODE_MAGIC), 34789e24cfd0SDarrick J. Wong mp, XFS_ERRTAG_IFLUSH_1)) { 34796a19d939SDave Chinner xfs_alert_tag(mp, XFS_PTAG_IFLUSH, 3480c9690043SDarrick J. Wong "%s: Bad inode %Lu magic number 0x%x, ptr "PTR_FMT, 34816a19d939SDave Chinner __func__, ip->i_ino, be16_to_cpu(dip->di_magic), dip); 3482f2019299SBrian Foster goto flush_out; 34831da177e4SLinus Torvalds } 3484c19b3b05SDave Chinner if (S_ISREG(VFS_I(ip)->i_mode)) { 34851da177e4SLinus Torvalds if (XFS_TEST_ERROR( 3486f7e67b20SChristoph Hellwig ip->i_df.if_format != XFS_DINODE_FMT_EXTENTS && 3487f7e67b20SChristoph Hellwig ip->i_df.if_format != XFS_DINODE_FMT_BTREE, 34889e24cfd0SDarrick J. Wong mp, XFS_ERRTAG_IFLUSH_3)) { 34896a19d939SDave Chinner xfs_alert_tag(mp, XFS_PTAG_IFLUSH, 3490c9690043SDarrick J. Wong "%s: Bad regular inode %Lu, ptr "PTR_FMT, 34916a19d939SDave Chinner __func__, ip->i_ino, ip); 3492f2019299SBrian Foster goto flush_out; 34931da177e4SLinus Torvalds } 3494c19b3b05SDave Chinner } else if (S_ISDIR(VFS_I(ip)->i_mode)) { 34951da177e4SLinus Torvalds if (XFS_TEST_ERROR( 3496f7e67b20SChristoph Hellwig ip->i_df.if_format != XFS_DINODE_FMT_EXTENTS && 3497f7e67b20SChristoph Hellwig ip->i_df.if_format != XFS_DINODE_FMT_BTREE && 3498f7e67b20SChristoph Hellwig ip->i_df.if_format != XFS_DINODE_FMT_LOCAL, 34999e24cfd0SDarrick J. Wong mp, XFS_ERRTAG_IFLUSH_4)) { 35006a19d939SDave Chinner xfs_alert_tag(mp, XFS_PTAG_IFLUSH, 3501c9690043SDarrick J. Wong "%s: Bad directory inode %Lu, ptr "PTR_FMT, 35026a19d939SDave Chinner __func__, ip->i_ino, ip); 3503f2019299SBrian Foster goto flush_out; 35041da177e4SLinus Torvalds } 35051da177e4SLinus Torvalds } 3506daf83964SChristoph Hellwig if (XFS_TEST_ERROR(ip->i_df.if_nextents + xfs_ifork_nextents(ip->i_afp) > 35079e24cfd0SDarrick J. Wong ip->i_d.di_nblocks, mp, XFS_ERRTAG_IFLUSH_5)) { 35086a19d939SDave Chinner xfs_alert_tag(mp, XFS_PTAG_IFLUSH, 35096a19d939SDave Chinner "%s: detected corrupt incore inode %Lu, " 3510c9690043SDarrick J. Wong "total extents = %d, nblocks = %Ld, ptr "PTR_FMT, 35116a19d939SDave Chinner __func__, ip->i_ino, 3512daf83964SChristoph Hellwig ip->i_df.if_nextents + xfs_ifork_nextents(ip->i_afp), 35136a19d939SDave Chinner ip->i_d.di_nblocks, ip); 3514f2019299SBrian Foster goto flush_out; 35151da177e4SLinus Torvalds } 35161da177e4SLinus Torvalds if (XFS_TEST_ERROR(ip->i_d.di_forkoff > mp->m_sb.sb_inodesize, 35179e24cfd0SDarrick J. Wong mp, XFS_ERRTAG_IFLUSH_6)) { 35186a19d939SDave Chinner xfs_alert_tag(mp, XFS_PTAG_IFLUSH, 3519c9690043SDarrick J. Wong "%s: bad inode %Lu, forkoff 0x%x, ptr "PTR_FMT, 35206a19d939SDave Chinner __func__, ip->i_ino, ip->i_d.di_forkoff, ip); 3521f2019299SBrian Foster goto flush_out; 35221da177e4SLinus Torvalds } 3523e60896d8SDave Chinner 35241da177e4SLinus Torvalds /* 3525263997a6SDave Chinner * Inode item log recovery for v2 inodes are dependent on the 3526e60896d8SDave Chinner * di_flushiter count for correct sequencing. We bump the flush 3527e60896d8SDave Chinner * iteration count so we can detect flushes which postdate a log record 3528e60896d8SDave Chinner * during recovery. This is redundant as we now log every change and 3529e60896d8SDave Chinner * hence this can't happen but we need to still do it to ensure 3530e60896d8SDave Chinner * backwards compatibility with old kernels that predate logging all 3531e60896d8SDave Chinner * inode changes. 35321da177e4SLinus Torvalds */ 35336471e9c5SChristoph Hellwig if (!xfs_sb_version_has_v3inode(&mp->m_sb)) 35341da177e4SLinus Torvalds ip->i_d.di_flushiter++; 35351da177e4SLinus Torvalds 35360f45a1b2SChristoph Hellwig /* 35370f45a1b2SChristoph Hellwig * If there are inline format data / attr forks attached to this inode, 35380f45a1b2SChristoph Hellwig * make sure they are not corrupt. 35390f45a1b2SChristoph Hellwig */ 3540f7e67b20SChristoph Hellwig if (ip->i_df.if_format == XFS_DINODE_FMT_LOCAL && 35410f45a1b2SChristoph Hellwig xfs_ifork_verify_local_data(ip)) 35420f45a1b2SChristoph Hellwig goto flush_out; 3543f7e67b20SChristoph Hellwig if (ip->i_afp && ip->i_afp->if_format == XFS_DINODE_FMT_LOCAL && 35440f45a1b2SChristoph Hellwig xfs_ifork_verify_local_attr(ip)) 3545f2019299SBrian Foster goto flush_out; 3546005c5db8SDarrick J. Wong 35471da177e4SLinus Torvalds /* 35483987848cSDave Chinner * Copy the dirty parts of the inode into the on-disk inode. We always 35493987848cSDave Chinner * copy out the core of the inode, because if the inode is dirty at all 35503987848cSDave Chinner * the core must be. 35511da177e4SLinus Torvalds */ 355293f958f9SDave Chinner xfs_inode_to_disk(ip, dip, iip->ili_item.li_lsn); 35531da177e4SLinus Torvalds 35541da177e4SLinus Torvalds /* Wrap, we never let the log put out DI_MAX_FLUSH */ 35551da177e4SLinus Torvalds if (ip->i_d.di_flushiter == DI_MAX_FLUSH) 35561da177e4SLinus Torvalds ip->i_d.di_flushiter = 0; 35571da177e4SLinus Torvalds 3558005c5db8SDarrick J. Wong xfs_iflush_fork(ip, dip, iip, XFS_DATA_FORK); 3559005c5db8SDarrick J. Wong if (XFS_IFORK_Q(ip)) 3560005c5db8SDarrick J. Wong xfs_iflush_fork(ip, dip, iip, XFS_ATTR_FORK); 35611da177e4SLinus Torvalds xfs_inobp_check(mp, bp); 35621da177e4SLinus Torvalds 35631da177e4SLinus Torvalds /* 3564f5d8d5c4SChristoph Hellwig * We've recorded everything logged in the inode, so we'd like to clear 3565f5d8d5c4SChristoph Hellwig * the ili_fields bits so we don't log and flush things unnecessarily. 3566f5d8d5c4SChristoph Hellwig * However, we can't stop logging all this information until the data 3567f5d8d5c4SChristoph Hellwig * we've copied into the disk buffer is written to disk. If we did we 3568f5d8d5c4SChristoph Hellwig * might overwrite the copy of the inode in the log with all the data 3569f5d8d5c4SChristoph Hellwig * after re-logging only part of it, and in the face of a crash we 3570f5d8d5c4SChristoph Hellwig * wouldn't have all the data we need to recover. 35711da177e4SLinus Torvalds * 3572f5d8d5c4SChristoph Hellwig * What we do is move the bits to the ili_last_fields field. When 3573f5d8d5c4SChristoph Hellwig * logging the inode, these bits are moved back to the ili_fields field. 3574f5d8d5c4SChristoph Hellwig * In the xfs_iflush_done() routine we clear ili_last_fields, since we 3575f5d8d5c4SChristoph Hellwig * know that the information those bits represent is permanently on 3576f5d8d5c4SChristoph Hellwig * disk. As long as the flush completes before the inode is logged 3577f5d8d5c4SChristoph Hellwig * again, then both ili_fields and ili_last_fields will be cleared. 35781da177e4SLinus Torvalds */ 3579f2019299SBrian Foster error = 0; 3580f2019299SBrian Foster flush_out: 35811319ebefSDave Chinner spin_lock(&iip->ili_lock); 3582f5d8d5c4SChristoph Hellwig iip->ili_last_fields = iip->ili_fields; 3583f5d8d5c4SChristoph Hellwig iip->ili_fields = 0; 3584fc0561ceSDave Chinner iip->ili_fsync_fields = 0; 35851319ebefSDave Chinner spin_unlock(&iip->ili_lock); 35861da177e4SLinus Torvalds 35871319ebefSDave Chinner /* 35881319ebefSDave Chinner * Store the current LSN of the inode so that we can tell whether the 35891319ebefSDave Chinner * item has moved in the AIL from xfs_iflush_done(). 35901319ebefSDave Chinner */ 35917b2e2a31SDavid Chinner xfs_trans_ail_copy_lsn(mp->m_ail, &iip->ili_flush_lsn, 35927b2e2a31SDavid Chinner &iip->ili_item.li_lsn); 35931da177e4SLinus Torvalds 359493848a99SChristoph Hellwig /* generate the checksum. */ 359593848a99SChristoph Hellwig xfs_dinode_calc_crc(mp, dip); 3596f2019299SBrian Foster return error; 35971da177e4SLinus Torvalds } 359844a8736bSDarrick J. Wong 3599e6187b34SDave Chinner /* 3600e6187b34SDave Chinner * Non-blocking flush of dirty inode metadata into the backing buffer. 3601e6187b34SDave Chinner * 3602e6187b34SDave Chinner * The caller must have a reference to the inode and hold the cluster buffer 3603e6187b34SDave Chinner * locked. The function will walk across all the inodes on the cluster buffer it 3604e6187b34SDave Chinner * can find and lock without blocking, and flush them to the cluster buffer. 3605e6187b34SDave Chinner * 3606*5717ea4dSDave Chinner * On successful flushing of at least one inode, the caller must write out the 3607*5717ea4dSDave Chinner * buffer and release it. If no inodes are flushed, -EAGAIN will be returned and 3608*5717ea4dSDave Chinner * the caller needs to release the buffer. On failure, the filesystem will be 3609*5717ea4dSDave Chinner * shut down, the buffer will have been unlocked and released, and EFSCORRUPTED 3610*5717ea4dSDave Chinner * will be returned. 3611e6187b34SDave Chinner */ 3612e6187b34SDave Chinner int 3613e6187b34SDave Chinner xfs_iflush_cluster( 3614e6187b34SDave Chinner struct xfs_buf *bp) 3615e6187b34SDave Chinner { 3616*5717ea4dSDave Chinner struct xfs_mount *mp = bp->b_mount; 3617*5717ea4dSDave Chinner struct xfs_log_item *lip, *n; 3618*5717ea4dSDave Chinner struct xfs_inode *ip; 3619*5717ea4dSDave Chinner struct xfs_inode_log_item *iip; 3620e6187b34SDave Chinner int clcount = 0; 3621*5717ea4dSDave Chinner int error = 0; 3622e6187b34SDave Chinner 3623e6187b34SDave Chinner /* 3624*5717ea4dSDave Chinner * We must use the safe variant here as on shutdown xfs_iflush_abort() 3625*5717ea4dSDave Chinner * can remove itself from the list. 3626e6187b34SDave Chinner */ 3627*5717ea4dSDave Chinner list_for_each_entry_safe(lip, n, &bp->b_li_list, li_bio_list) { 3628*5717ea4dSDave Chinner iip = (struct xfs_inode_log_item *)lip; 3629*5717ea4dSDave Chinner ip = iip->ili_inode; 3630*5717ea4dSDave Chinner 3631*5717ea4dSDave Chinner /* 3632*5717ea4dSDave Chinner * Quick and dirty check to avoid locks if possible. 3633*5717ea4dSDave Chinner */ 3634*5717ea4dSDave Chinner if (__xfs_iflags_test(ip, XFS_IRECLAIM | XFS_IFLOCK)) 3635*5717ea4dSDave Chinner continue; 3636*5717ea4dSDave Chinner if (xfs_ipincount(ip)) 3637*5717ea4dSDave Chinner continue; 3638*5717ea4dSDave Chinner 3639*5717ea4dSDave Chinner /* 3640*5717ea4dSDave Chinner * The inode is still attached to the buffer, which means it is 3641*5717ea4dSDave Chinner * dirty but reclaim might try to grab it. Check carefully for 3642*5717ea4dSDave Chinner * that, and grab the ilock while still holding the i_flags_lock 3643*5717ea4dSDave Chinner * to guarantee reclaim will not be able to reclaim this inode 3644*5717ea4dSDave Chinner * once we drop the i_flags_lock. 3645*5717ea4dSDave Chinner */ 3646*5717ea4dSDave Chinner spin_lock(&ip->i_flags_lock); 3647*5717ea4dSDave Chinner ASSERT(!__xfs_iflags_test(ip, XFS_ISTALE)); 3648*5717ea4dSDave Chinner if (__xfs_iflags_test(ip, XFS_IRECLAIM | XFS_IFLOCK)) { 3649*5717ea4dSDave Chinner spin_unlock(&ip->i_flags_lock); 3650e6187b34SDave Chinner continue; 3651e6187b34SDave Chinner } 3652e6187b34SDave Chinner 3653e6187b34SDave Chinner /* 3654*5717ea4dSDave Chinner * ILOCK will pin the inode against reclaim and prevent 3655*5717ea4dSDave Chinner * concurrent transactions modifying the inode while we are 3656*5717ea4dSDave Chinner * flushing the inode. 3657e6187b34SDave Chinner */ 3658*5717ea4dSDave Chinner if (!xfs_ilock_nowait(ip, XFS_ILOCK_SHARED)) { 3659*5717ea4dSDave Chinner spin_unlock(&ip->i_flags_lock); 3660*5717ea4dSDave Chinner continue; 3661*5717ea4dSDave Chinner } 3662*5717ea4dSDave Chinner spin_unlock(&ip->i_flags_lock); 3663*5717ea4dSDave Chinner 3664*5717ea4dSDave Chinner /* 3665*5717ea4dSDave Chinner * Skip inodes that are already flush locked as they have 3666*5717ea4dSDave Chinner * already been written to the buffer. 3667*5717ea4dSDave Chinner */ 3668*5717ea4dSDave Chinner if (!xfs_iflock_nowait(ip)) { 3669*5717ea4dSDave Chinner xfs_iunlock(ip, XFS_ILOCK_SHARED); 3670*5717ea4dSDave Chinner continue; 3671*5717ea4dSDave Chinner } 3672*5717ea4dSDave Chinner 3673*5717ea4dSDave Chinner /* 3674*5717ea4dSDave Chinner * Abort flushing this inode if we are shut down because the 3675*5717ea4dSDave Chinner * inode may not currently be in the AIL. This can occur when 3676*5717ea4dSDave Chinner * log I/O failure unpins the inode without inserting into the 3677*5717ea4dSDave Chinner * AIL, leaving a dirty/unpinned inode attached to the buffer 3678*5717ea4dSDave Chinner * that otherwise looks like it should be flushed. 3679*5717ea4dSDave Chinner */ 3680*5717ea4dSDave Chinner if (XFS_FORCED_SHUTDOWN(mp)) { 3681*5717ea4dSDave Chinner xfs_iunpin_wait(ip); 3682*5717ea4dSDave Chinner /* xfs_iflush_abort() drops the flush lock */ 3683*5717ea4dSDave Chinner xfs_iflush_abort(ip); 3684*5717ea4dSDave Chinner xfs_iunlock(ip, XFS_ILOCK_SHARED); 3685*5717ea4dSDave Chinner error = -EIO; 3686*5717ea4dSDave Chinner continue; 3687*5717ea4dSDave Chinner } 3688*5717ea4dSDave Chinner 3689*5717ea4dSDave Chinner /* don't block waiting on a log force to unpin dirty inodes */ 3690*5717ea4dSDave Chinner if (xfs_ipincount(ip)) { 3691*5717ea4dSDave Chinner xfs_ifunlock(ip); 3692*5717ea4dSDave Chinner xfs_iunlock(ip, XFS_ILOCK_SHARED); 3693*5717ea4dSDave Chinner continue; 3694*5717ea4dSDave Chinner } 3695*5717ea4dSDave Chinner 3696*5717ea4dSDave Chinner if (!xfs_inode_clean(ip)) 3697*5717ea4dSDave Chinner error = xfs_iflush(ip, bp); 3698*5717ea4dSDave Chinner else 3699*5717ea4dSDave Chinner xfs_ifunlock(ip); 3700*5717ea4dSDave Chinner xfs_iunlock(ip, XFS_ILOCK_SHARED); 3701*5717ea4dSDave Chinner if (error) 3702e6187b34SDave Chinner break; 3703e6187b34SDave Chinner clcount++; 3704e6187b34SDave Chinner } 3705e6187b34SDave Chinner 3706e6187b34SDave Chinner if (error) { 3707e6187b34SDave Chinner bp->b_flags |= XBF_ASYNC; 3708e6187b34SDave Chinner xfs_buf_ioend_fail(bp); 3709e6187b34SDave Chinner xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE); 3710e6187b34SDave Chinner return error; 3711e6187b34SDave Chinner } 3712e6187b34SDave Chinner 3713*5717ea4dSDave Chinner if (!clcount) 3714*5717ea4dSDave Chinner return -EAGAIN; 3715*5717ea4dSDave Chinner 3716*5717ea4dSDave Chinner XFS_STATS_INC(mp, xs_icluster_flushcnt); 3717*5717ea4dSDave Chinner XFS_STATS_ADD(mp, xs_icluster_flushinode, clcount); 3718*5717ea4dSDave Chinner return 0; 3719*5717ea4dSDave Chinner 3720*5717ea4dSDave Chinner } 3721*5717ea4dSDave Chinner 372244a8736bSDarrick J. Wong /* Release an inode. */ 372344a8736bSDarrick J. Wong void 372444a8736bSDarrick J. Wong xfs_irele( 372544a8736bSDarrick J. Wong struct xfs_inode *ip) 372644a8736bSDarrick J. Wong { 372744a8736bSDarrick J. Wong trace_xfs_irele(ip, _RET_IP_); 372844a8736bSDarrick J. Wong iput(VFS_I(ip)); 372944a8736bSDarrick J. Wong } 373054fbdd10SChristoph Hellwig 373154fbdd10SChristoph Hellwig /* 373254fbdd10SChristoph Hellwig * Ensure all commited transactions touching the inode are written to the log. 373354fbdd10SChristoph Hellwig */ 373454fbdd10SChristoph Hellwig int 373554fbdd10SChristoph Hellwig xfs_log_force_inode( 373654fbdd10SChristoph Hellwig struct xfs_inode *ip) 373754fbdd10SChristoph Hellwig { 373854fbdd10SChristoph Hellwig xfs_lsn_t lsn = 0; 373954fbdd10SChristoph Hellwig 374054fbdd10SChristoph Hellwig xfs_ilock(ip, XFS_ILOCK_SHARED); 374154fbdd10SChristoph Hellwig if (xfs_ipincount(ip)) 374254fbdd10SChristoph Hellwig lsn = ip->i_itemp->ili_last_lsn; 374354fbdd10SChristoph Hellwig xfs_iunlock(ip, XFS_ILOCK_SHARED); 374454fbdd10SChristoph Hellwig 374554fbdd10SChristoph Hellwig if (!lsn) 374654fbdd10SChristoph Hellwig return 0; 374754fbdd10SChristoph Hellwig return xfs_log_force_lsn(ip->i_mount, lsn, XFS_LOG_SYNC, NULL); 374854fbdd10SChristoph Hellwig } 3749e2aaee9cSDarrick J. Wong 3750e2aaee9cSDarrick J. Wong /* 3751e2aaee9cSDarrick J. Wong * Grab the exclusive iolock for a data copy from src to dest, making sure to 3752e2aaee9cSDarrick J. Wong * abide vfs locking order (lowest pointer value goes first) and breaking the 3753e2aaee9cSDarrick J. Wong * layout leases before proceeding. The loop is needed because we cannot call 3754e2aaee9cSDarrick J. Wong * the blocking break_layout() with the iolocks held, and therefore have to 3755e2aaee9cSDarrick J. Wong * back out both locks. 3756e2aaee9cSDarrick J. Wong */ 3757e2aaee9cSDarrick J. Wong static int 3758e2aaee9cSDarrick J. Wong xfs_iolock_two_inodes_and_break_layout( 3759e2aaee9cSDarrick J. Wong struct inode *src, 3760e2aaee9cSDarrick J. Wong struct inode *dest) 3761e2aaee9cSDarrick J. Wong { 3762e2aaee9cSDarrick J. Wong int error; 3763e2aaee9cSDarrick J. Wong 3764e2aaee9cSDarrick J. Wong if (src > dest) 3765e2aaee9cSDarrick J. Wong swap(src, dest); 3766e2aaee9cSDarrick J. Wong 3767e2aaee9cSDarrick J. Wong retry: 3768e2aaee9cSDarrick J. Wong /* Wait to break both inodes' layouts before we start locking. */ 3769e2aaee9cSDarrick J. Wong error = break_layout(src, true); 3770e2aaee9cSDarrick J. Wong if (error) 3771e2aaee9cSDarrick J. Wong return error; 3772e2aaee9cSDarrick J. Wong if (src != dest) { 3773e2aaee9cSDarrick J. Wong error = break_layout(dest, true); 3774e2aaee9cSDarrick J. Wong if (error) 3775e2aaee9cSDarrick J. Wong return error; 3776e2aaee9cSDarrick J. Wong } 3777e2aaee9cSDarrick J. Wong 3778e2aaee9cSDarrick J. Wong /* Lock one inode and make sure nobody got in and leased it. */ 3779e2aaee9cSDarrick J. Wong inode_lock(src); 3780e2aaee9cSDarrick J. Wong error = break_layout(src, false); 3781e2aaee9cSDarrick J. Wong if (error) { 3782e2aaee9cSDarrick J. Wong inode_unlock(src); 3783e2aaee9cSDarrick J. Wong if (error == -EWOULDBLOCK) 3784e2aaee9cSDarrick J. Wong goto retry; 3785e2aaee9cSDarrick J. Wong return error; 3786e2aaee9cSDarrick J. Wong } 3787e2aaee9cSDarrick J. Wong 3788e2aaee9cSDarrick J. Wong if (src == dest) 3789e2aaee9cSDarrick J. Wong return 0; 3790e2aaee9cSDarrick J. Wong 3791e2aaee9cSDarrick J. Wong /* Lock the other inode and make sure nobody got in and leased it. */ 3792e2aaee9cSDarrick J. Wong inode_lock_nested(dest, I_MUTEX_NONDIR2); 3793e2aaee9cSDarrick J. Wong error = break_layout(dest, false); 3794e2aaee9cSDarrick J. Wong if (error) { 3795e2aaee9cSDarrick J. Wong inode_unlock(src); 3796e2aaee9cSDarrick J. Wong inode_unlock(dest); 3797e2aaee9cSDarrick J. Wong if (error == -EWOULDBLOCK) 3798e2aaee9cSDarrick J. Wong goto retry; 3799e2aaee9cSDarrick J. Wong return error; 3800e2aaee9cSDarrick J. Wong } 3801e2aaee9cSDarrick J. Wong 3802e2aaee9cSDarrick J. Wong return 0; 3803e2aaee9cSDarrick J. Wong } 3804e2aaee9cSDarrick J. Wong 3805e2aaee9cSDarrick J. Wong /* 3806e2aaee9cSDarrick J. Wong * Lock two inodes so that userspace cannot initiate I/O via file syscalls or 3807e2aaee9cSDarrick J. Wong * mmap activity. 3808e2aaee9cSDarrick J. Wong */ 3809e2aaee9cSDarrick J. Wong int 3810e2aaee9cSDarrick J. Wong xfs_ilock2_io_mmap( 3811e2aaee9cSDarrick J. Wong struct xfs_inode *ip1, 3812e2aaee9cSDarrick J. Wong struct xfs_inode *ip2) 3813e2aaee9cSDarrick J. Wong { 3814e2aaee9cSDarrick J. Wong int ret; 3815e2aaee9cSDarrick J. Wong 3816e2aaee9cSDarrick J. Wong ret = xfs_iolock_two_inodes_and_break_layout(VFS_I(ip1), VFS_I(ip2)); 3817e2aaee9cSDarrick J. Wong if (ret) 3818e2aaee9cSDarrick J. Wong return ret; 3819e2aaee9cSDarrick J. Wong if (ip1 == ip2) 3820e2aaee9cSDarrick J. Wong xfs_ilock(ip1, XFS_MMAPLOCK_EXCL); 3821e2aaee9cSDarrick J. Wong else 3822e2aaee9cSDarrick J. Wong xfs_lock_two_inodes(ip1, XFS_MMAPLOCK_EXCL, 3823e2aaee9cSDarrick J. Wong ip2, XFS_MMAPLOCK_EXCL); 3824e2aaee9cSDarrick J. Wong return 0; 3825e2aaee9cSDarrick J. Wong } 3826e2aaee9cSDarrick J. Wong 3827e2aaee9cSDarrick J. Wong /* Unlock both inodes to allow IO and mmap activity. */ 3828e2aaee9cSDarrick J. Wong void 3829e2aaee9cSDarrick J. Wong xfs_iunlock2_io_mmap( 3830e2aaee9cSDarrick J. Wong struct xfs_inode *ip1, 3831e2aaee9cSDarrick J. Wong struct xfs_inode *ip2) 3832e2aaee9cSDarrick J. Wong { 3833e2aaee9cSDarrick J. Wong bool same_inode = (ip1 == ip2); 3834e2aaee9cSDarrick J. Wong 3835e2aaee9cSDarrick J. Wong xfs_iunlock(ip2, XFS_MMAPLOCK_EXCL); 3836e2aaee9cSDarrick J. Wong if (!same_inode) 3837e2aaee9cSDarrick J. Wong xfs_iunlock(ip1, XFS_MMAPLOCK_EXCL); 3838e2aaee9cSDarrick J. Wong inode_unlock(VFS_I(ip2)); 3839e2aaee9cSDarrick J. Wong if (!same_inode) 3840e2aaee9cSDarrick J. Wong inode_unlock(VFS_I(ip1)); 3841e2aaee9cSDarrick J. Wong } 3842